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  <front>
    <journal-meta><journal-id journal-id-type="publisher">HESS</journal-id><journal-title-group>
    <journal-title>Hydrology and Earth System Sciences</journal-title>
    <abbrev-journal-title abbrev-type="publisher">HESS</abbrev-journal-title><abbrev-journal-title abbrev-type="nlm-ta">Hydrol. Earth Syst. Sci.</abbrev-journal-title>
  </journal-title-group><issn pub-type="epub">1607-7938</issn><publisher>
    <publisher-name>Copernicus Publications</publisher-name>
    <publisher-loc>Göttingen, Germany</publisher-loc>
  </publisher></journal-meta>
    <article-meta>
      <article-id pub-id-type="doi">10.5194/hess-24-2379-2020</article-id><title-group><article-title>Modeling inorganic carbon dynamics in <?xmltex \hack{\break}?> the Seine River continuum in France</article-title><alt-title>Modeling inorganic carbon dynamics in the Seine River continuum in France</alt-title>
      </title-group><?xmltex \runningtitle{Modeling inorganic carbon dynamics in the Seine River continuum in France}?><?xmltex \runningauthor{A.~Marescaux et al.}?>
      <contrib-group>
        <contrib contrib-type="author" corresp="yes" rid="aff1">
          <name><surname>Marescaux</surname><given-names>Audrey</given-names></name>
          <email>audreymarescaux@gmail.com</email>
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Thieu</surname><given-names>Vincent</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff2">
          <name><surname>Gypens</surname><given-names>Nathalie</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff3">
          <name><surname>Silvestre</surname><given-names>Marie</given-names></name>
          
        <ext-link>https://orcid.org/0000-0002-9508-7705</ext-link></contrib>
        <contrib contrib-type="author" corresp="no" rid="aff1">
          <name><surname>Garnier</surname><given-names>Josette</given-names></name>
          
        </contrib>
        <aff id="aff1"><label>1</label><institution>Sorbonne Université, CNRS, EPHE, Institut Pierre Simon Laplace FR 636, UMR 7619 METIS, Paris, France</institution>
        </aff>
        <aff id="aff2"><label>2</label><institution>Université Libre de Bruxelles, Ecologie des Systèmes
Aquatiques, Brussels, Belgium</institution>
        </aff>
        <aff id="aff3"><label>3</label><institution>Sorbonne Université, CNRS, Federation Ile-de-France of Research
for the Environment FR3020, Paris, France</institution>
        </aff>
      </contrib-group>
      <author-notes><corresp id="corr1">Audrey Marescaux (audreymarescaux@gmail.com)</corresp></author-notes><pub-date><day>11</day><month>May</month><year>2020</year></pub-date>
      
      <volume>24</volume>
      <issue>5</issue>
      <fpage>2379</fpage><lpage>2398</lpage>
      <history>
        <date date-type="received"><day>9</day><month>November</month><year>2019</year></date>
           <date date-type="rev-request"><day>17</day><month>December</month><year>2019</year></date>
           <date date-type="rev-recd"><day>20</day><month>February</month><year>2020</year></date>
           <date date-type="accepted"><day>1</day><month>April</month><year>2020</year></date>
      </history>
      <permissions>
        <copyright-statement>Copyright: © 2020 Audrey Marescaux et al.</copyright-statement>
        <copyright-year>2020</copyright-year>
      <license license-type="open-access"><license-p>This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this licence, visit <ext-link ext-link-type="uri" xlink:href="https://creativecommons.org/licenses/by/4.0/">https://creativecommons.org/licenses/by/4.0/</ext-link></license-p></license></permissions><self-uri xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020.html">This article is available from https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020.html</self-uri><self-uri xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020.pdf">The full text article is available as a PDF file from https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020.pdf</self-uri>
      <abstract><title>Abstract</title>
    <p id="d1e132">Inland waters are an active component of the carbon cycle where
transformations and transports are associated with carbon dioxide (<inline-formula><mml:math id="M1" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>) outgassing. This study estimated <inline-formula><mml:math id="M2" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions from the human-impacted Seine River (France) and provided a detailed budget of aquatic carbon transfers for organic and inorganic forms, including the in-stream metabolism along the whole Seine River network. The existing process-based biogeochemical pyNuts-Riverstrahler model was supplemented with a newly developed inorganic carbon module and simulations were performed for the recent time period 2010–2013. New input constraints for the modeling of riverine inorganic carbon were documented by field measurements and complemented by analysis of existing databases. The resulting dissolved inorganic carbon (DIC) concentrations in the Seine aquifers ranged from 25 to 92 mg C L<inline-formula><mml:math id="M3" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, while in wastewater treatment plant (WWTP) effluents our DIC measurements averaged 70 mg C L<inline-formula><mml:math id="M4" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>.</p>
    <p id="d1e181">Along the main stem of the Seine River, simulations of DIC, total alkalinity, pH and <inline-formula><mml:math id="M5" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations were of the same order of
magnitude as the observations, but seasonal variability was not always well
reproduced. Our simulations demonstrated the <inline-formula><mml:math id="M6" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> supersaturation with respect to atmospheric concentrations over the entire Seine River network. The most significant outgassing was in lower-order streams while peaks were simulated downstream of the major WWTP effluent. For the period studied (2010–2013), the annual average of simulated <inline-formula><mml:math id="M7" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions from the Seine drainage network were estimated at <inline-formula><mml:math id="M8" display="inline"><mml:mrow><mml:mn mathvariant="normal">364</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">99</mml:mn></mml:mrow></mml:math></inline-formula> Gg C yr<inline-formula><mml:math id="M9" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>.</p>
    <p id="d1e241">Results from metabolism analysis in the Seine hydrographic network
highlighted the importance of benthic activities in headwaters while
planktonic activities occurred mainly downstream in larger rivers. The net
ecosystem productivity remained negative throughout the 4 simulated years
and over the entire drainage network, highlighting the heterotrophy of the
basin. <?xmltex \hack{\newline}?><?xmltex \hack{\newline}?><?xmltex \hack{\noindent}?><bold>Highlights</bold>
<list list-type="bullet"><list-item>
      <p id="d1e252"><inline-formula><mml:math id="M10" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emission from the Seine River was estimated at <inline-formula><mml:math id="M11" display="inline"><mml:mrow><mml:mn mathvariant="normal">364</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">99</mml:mn></mml:mrow></mml:math></inline-formula> Gg C yr<inline-formula><mml:math id="M12" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> with the Riverstrahler model.</p></list-item><list-item>
      <p id="d1e290"><inline-formula><mml:math id="M13" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> riverine concentrations are modulated by groundwater discharge and instream metabolism.</p></list-item><list-item>
      <p id="d1e304"><inline-formula><mml:math id="M14" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions account for 31 % of inorganic carbon exports, the rest being exported as DIC.</p></list-item></list></p>
  </abstract>
    </article-meta>
  </front>
<body>
      

<sec id="Ch1.S1" sec-type="intro">
  <label>1</label><title>Introduction</title>
      <p id="d1e326">Rivers have been demonstrated to be active pipes for transport, transformation, storage and outgassing of inorganic and organic carbon (Cole et al., 2007). Although there are large uncertainties in the quantification of flux from inland waters, carbon dioxide (<inline-formula><mml:math id="M15" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>) outgassing has been estimated to be a significant efflux to the atmosphere, subject to regional variabilities (Cole et al., 2007; Battin et al., 2009a; Aufdenkampe et al., 2011; Lauerwald et al., 2015; Regnier et al., 2013a; Raymond et al., 2013; Sawakuchi et al., 2017; Drake et al., 2018). These variabilities are determined by regional climate and watershed characteristics and are related to terrestrial<?pagebreak page2380?> carbon exports under different forms, from organic to inorganic, and dissolved to particulate. Organic carbon entering rivers can originate from terrestrial ecosystems as plant detritus, soil leaching or soil erosion, and groundwater supply, but it can also be produced instream by photosynthesis or brought by dust particles (Prairie and Cole, 2009; Drake et al., 2018). Inorganic carbon originates from groundwater, soil leaching and exchange by diffusion at the air–water interface, depending on the partial pressure of <inline-formula><mml:math id="M16" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> (<inline-formula><mml:math id="M17" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>) at the water surface with respect to atmospheric <inline-formula><mml:math id="M18" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> (Cole et al., 2007; Drake et al., 2018; Marx et al., 2018). Besides air–water exchanges, carbon exchanges occur at the water–sediment interface, through biomineralization and/or burial (Regnier et al., 2013b). As a whole, eutrophic, oligo- and mesotrophic hydrosystems generally act as a source of carbon; however, lentic systems may be undersaturated with respect to atmospheric <inline-formula><mml:math id="M19" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> (Prairie and Cole, 2009; Xu et al., 2019; Yang et al., 2019).</p>
      <p id="d1e390">Direct measurements of <inline-formula><mml:math id="M20" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> or isotopic surveys (as realized by Dubois et al., 2010, in the Mississippi River) along the drainage network are still too scarce to accurately support temporal and spatial analyses of <inline-formula><mml:math id="M21" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> variability. While calculations from pH, temperature and alkalinity may help reconstruct spatiotemporal patterns of <inline-formula><mml:math id="M22" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> dynamics (Marescaux et al., 2018b), modeling tools can predict the fate of carbon in whole aquatic systems. Indeed, modeling approaches have made it possible to simulate and quantify carbon fluxes between different
reservoirs: atmosphere, biosphere, hydrosphere and lithosphere (e.g., Bern-SAR, Joos et al., 1996; ACC2, Tanaka et al., 2007; TOTEM, Mackenzie et al., 2011; MAGICC6, Meehl et al., 2007). In addition to these box approaches, a number of more comprehensive mechanistic models, describing biogeochemical processes involved in carbon cycling and <inline-formula><mml:math id="M23" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> evasion, have been set up for oceans (e.g., Doney et al., 2004; Aumont et al., 2015), coastal waters (e.g., Borges et al., 2006; Gypens et al., 2004, 2009, 2011) and estuaries (e.g., Cai and Wang, 1998; Volta et al., 2014; Laruelle et al., 2019). In
inland waters, the NICE-BGC model (Nakayama, 2016) accurately represents <inline-formula><mml:math id="M24" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> evasion at the global scale. However, to our knowledge, while several process-based river models describe the carbon cycle through organic matter input and degradation by aquatic microorganisms (e.g., PEGASE, Smitz et al., 1997; ProSe, Vilmin et al., 2018; QUAL2Kw, Pelletier et al., 2006; QUAL-NET, Minaudo et al., 2018, QUASAR, Whitehead et al., 1997; Riverstrahler, Billen et al., 1994; Garnier et al., 2002), none of them describes the inorganic carbon cycle including carbon dioxide outgassing.</p>
      <p id="d1e450">The Seine River (northwestern France) has long been studied using the
biogeochemical riverine Riverstrahler model (Billen et al., 1994; Garnier et al., 1995), a generic model of water quality and biogeochemical functioning of large river systems. For example, the model has made it possible to quantify deliveries to the coastal zone and understand eutrophication phenomena (Billen and Garnier, 1999; Billen et al., 2001; Passy et al., 2016; Garnier et al., 2019), nitrogen transformation and <inline-formula><mml:math id="M25" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula> emissions
(Garnier et al., 2007, 2009; Vilain et al., 2012) as well as nitrate retention (Billen and Garnier, 1999; Billen et al., 2018), and the organic carbon metabolism (Garnier and Billen, 2007; Vilmin et al., 2016). It is only
recently that we investigated <inline-formula><mml:math id="M26" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and emphasized the factors controlling <inline-formula><mml:math id="M27" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> dynamics in the Seine River (Marescaux et al., 2018b) or its estuary (Laruelle et al., 2019).</p>
      <p id="d1e492">The purpose of the present study was to quantify the sources, transformations, sinks and gaseous emissions of inorganic carbon using the
Riverstrahler modeling approach (Billen et al., 1994; Garnier et al., 2002;
Thieu et al., 2009). A further aim in newly implementing this <inline-formula><mml:math id="M28" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> module was to quantify and discuss autotrophy versus heterotrophy patterns in regard to <inline-formula><mml:math id="M29" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations and supersaturation in the drainage network.</p>
</sec>
<sec id="Ch1.S2">
  <label>2</label><title>Material and methods</title>
<sec id="Ch1.S2.SS1">
  <label>2.1</label><title>Description of the Seine basin</title>
      <p id="d1e532">Situated in northwestern France, 46<inline-formula><mml:math id="M30" display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>57<inline-formula><mml:math id="M31" display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula>–50<inline-formula><mml:math id="M32" display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>55<inline-formula><mml:math id="M33" display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula> N and 0<inline-formula><mml:math id="M34" display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula>7<inline-formula><mml:math id="M35" display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula>1<inline-formula><mml:math id="M36" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>′</mml:mo><mml:mo>′</mml:mo></mml:mrow></mml:msup></mml:math></inline-formula>–4<inline-formula><mml:math id="M37" display="inline"><mml:msup><mml:mi/><mml:mo>∘</mml:mo></mml:msup></mml:math></inline-formula> E, the Seine basin (<inline-formula><mml:math id="M38" display="inline"><mml:mrow><mml:mo>∼</mml:mo><mml:mn mathvariant="normal">76</mml:mn><mml:mspace linebreak="nobreak" width="0.125em"/><mml:mn mathvariant="normal">285</mml:mn></mml:mrow></mml:math></inline-formula> km<inline-formula><mml:math id="M39" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>) has a temperate climate and a pluvio-oceanic hydrologic regime (Fig. 1). The mean altitude of the basin is 150 m a.s.l. (above sea level) with 1 % of the basin reaching more than 550 m a.s.l. in the Morvan (Guerrini et al., 1998). The water flow at Poses (stream order 7, basin area 64 867 km<inline-formula><mml:math id="M40" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>), the most downstream monitoring station free from tidal influence, averaged 490 m<inline-formula><mml:math id="M41" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M42" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> during the 2010–2013 period (the HYDRO database, <uri>http://www.hydro.eaufrance.fr</uri>, last access: 11 February 2020). The major tributaries include the Marne and upper Seine rivers upstream from Paris, and the Oise River downstream from Paris (Fig. 1a). Three main reservoirs, storing water during winter and sustaining low flow during summer, are located upstream on the Marne River and the upstream Seine and its Aube tributary (Fig. 1a). The total storage capacity of these reservoirs is <inline-formula><mml:math id="M43" display="inline"><mml:mrow><mml:mn mathvariant="normal">800</mml:mn><mml:mo>×</mml:mo><mml:msup><mml:mn mathvariant="normal">10</mml:mn><mml:mn mathvariant="normal">6</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> m<inline-formula><mml:math id="M44" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> (Garnier et al., 1999).</p>

      <?xmltex \floatpos{p}?><fig id="Ch1.F1"><?xmltex \currentcnt{1}?><label>Figure 1</label><caption><p id="d1e693">Characteristics of the Seine basin: <bold>(a)</bold> drainage network according to Strahler stream orders (Strahler, 1952, 1957) and monitoring stations (I: Poses, II: Poissy (downstream of Paris), III: Paris, IV: Ferté-sous-Jouarre (upstream from Paris)); <bold>(b)</bold> the lithology according to Albinet (1967); <bold>(c)</bold> land use according to the Corine Land Cover database, with six simplified classes (EEA, 2012); <bold>(d)</bold> wastewater treatment plants (WWTPs) of the basin. Red dots are the WWTPs sampled in 2018.</p></caption>
          <?xmltex \igopts{width=199.169291pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f01.png"/>

        </fig>

      <p id="d1e714">The maximum water discharge of these tributaries occurs during winter with
the lowest temperature and rate of evapotranspiration; the opposite behavior is observed during summer (Guerrini et al., 1998).</p>
      <p id="d1e718">Except for the crystalline rocks in the north and from the highland of the
Morvan (south), the Seine basin is for the most part located in the lowland
Parisian basin with sedimentary rocks (Mégnien, 1980; Pomerol and Feugueur, 1986; Guerrini et al., 1998). The largest aquifers are in carbonate rock (mainly limestone and chalk) or detrital (sand and sandstone) material separated by impermeable or less permeable layers.</p>
      <p id="d1e721">The concept of Strahler stream order (SO) (Strahler, 1957) was adopted for describing the geomorphology of a drainage<?pagebreak page2381?> network in the Riverstrahler model (Billen et al., 1994). The smaller perennial streams are in order 1. Only confluences between two river stretches with the same SO produce an increase in Strahler ordination (SO <inline-formula><mml:math id="M45" display="inline"><mml:mo>+</mml:mo></mml:math></inline-formula> 1) (Fig. 1a). The mean hydrophysical characteristics of the Seine River are aggregated by stream orders shown in Table 1.</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T1" specific-use="star"><?xmltex \currentcnt{1}?><label>Table 1</label><caption><p id="d1e734">Hydro-morphological characteristics of the Seine drainage network, <inline-formula><mml:math id="M46" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">a</mml:mi></mml:msup></mml:math></inline-formula> averaged by Strahler order (SO) and <inline-formula><mml:math id="M47" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">b</mml:mi></mml:msup></mml:math></inline-formula> over the time period 2010-2013. Hydrographic network provided by the Agence de l'Eau Seine Normandie and water discharges by the national Banque Hydro database. Depth and flow velocity calculated according to Billen et al. (1994); width calculated according to Thieu et al. (2009).</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="8">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="right"/>
     <oasis:colspec colnum="3" colname="col3" align="right"/>
     <oasis:colspec colnum="4" colname="col4" align="right"/>
     <oasis:colspec colnum="5" colname="col5" align="center"/>
     <oasis:colspec colnum="6" colname="col6" align="center"/>
     <oasis:colspec colnum="7" colname="col7" align="right"/>
     <oasis:colspec colnum="8" colname="col8" align="center"/>
     <oasis:thead>
       <oasis:row>
         <oasis:entry colname="col1">SO</oasis:entry>
         <oasis:entry colname="col2">Draining</oasis:entry>
         <oasis:entry colname="col3">Cum.</oasis:entry>
         <oasis:entry colname="col4">Width<inline-formula><mml:math id="M48" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">a</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col5">Depth<inline-formula><mml:math id="M49" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">b</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">Slope<inline-formula><mml:math id="M50" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">a</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col7">Discharge<inline-formula><mml:math id="M51" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">b</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col8">Flow</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">area</oasis:entry>
         <oasis:entry colname="col3">length</oasis:entry>
         <oasis:entry colname="col4">(m)</oasis:entry>
         <oasis:entry colname="col5">(m)</oasis:entry>
         <oasis:entry colname="col6">(m m<inline-formula><mml:math id="M52" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>)</oasis:entry>
         <oasis:entry colname="col7">(m<inline-formula><mml:math id="M53" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M54" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>)</oasis:entry>
         <oasis:entry colname="col8">velocity<inline-formula><mml:math id="M55" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">b</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">(km<inline-formula><mml:math id="M56" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>)</oasis:entry>
         <oasis:entry colname="col3">(km)</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
         <oasis:entry colname="col7"/>
         <oasis:entry colname="col8">(m s<inline-formula><mml:math id="M57" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>)</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">1</oasis:entry>
         <oasis:entry colname="col2">36 083</oasis:entry>
         <oasis:entry colname="col3">12 759</oasis:entry>
         <oasis:entry colname="col4">2.4</oasis:entry>
         <oasis:entry colname="col5">0.14</oasis:entry>
         <oasis:entry colname="col6">0.01442</oasis:entry>
         <oasis:entry colname="col7">0.13</oasis:entry>
         <oasis:entry colname="col8">0.34</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">2</oasis:entry>
         <oasis:entry colname="col2">12 354</oasis:entry>
         <oasis:entry colname="col3">5231</oasis:entry>
         <oasis:entry colname="col4">5.2</oasis:entry>
         <oasis:entry colname="col5">0.29</oasis:entry>
         <oasis:entry colname="col6">0.00540</oasis:entry>
         <oasis:entry colname="col7">0.66</oasis:entry>
         <oasis:entry colname="col8">0.36</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">3</oasis:entry>
         <oasis:entry colname="col2">7067</oasis:entry>
         <oasis:entry colname="col3">2871</oasis:entry>
         <oasis:entry colname="col4">10.6</oasis:entry>
         <oasis:entry colname="col5">0.45</oasis:entry>
         <oasis:entry colname="col6">0.00300</oasis:entry>
         <oasis:entry colname="col7">2.17</oasis:entry>
         <oasis:entry colname="col8">0.47</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">4</oasis:entry>
         <oasis:entry colname="col2">4054</oasis:entry>
         <oasis:entry colname="col3">1548</oasis:entry>
         <oasis:entry colname="col4">20.2</oasis:entry>
         <oasis:entry colname="col5">0.79</oasis:entry>
         <oasis:entry colname="col6">0.00212</oasis:entry>
         <oasis:entry colname="col7">6.35</oasis:entry>
         <oasis:entry colname="col8">0.33</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">5</oasis:entry>
         <oasis:entry colname="col2">2649</oasis:entry>
         <oasis:entry colname="col3">943</oasis:entry>
         <oasis:entry colname="col4">46.0</oasis:entry>
         <oasis:entry colname="col5">1.11</oasis:entry>
         <oasis:entry colname="col6">0.00060</oasis:entry>
         <oasis:entry colname="col7">25.87</oasis:entry>
         <oasis:entry colname="col8">0.46</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">6</oasis:entry>
         <oasis:entry colname="col2">2094</oasis:entry>
         <oasis:entry colname="col3">636</oasis:entry>
         <oasis:entry colname="col4">77.8</oasis:entry>
         <oasis:entry colname="col5">2.51</oasis:entry>
         <oasis:entry colname="col6">0.00029</oasis:entry>
         <oasis:entry colname="col7">82.22</oasis:entry>
         <oasis:entry colname="col8">0.42</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">7</oasis:entry>
         <oasis:entry colname="col2">1354</oasis:entry>
         <oasis:entry colname="col3">318</oasis:entry>
         <oasis:entry colname="col4">168.3</oasis:entry>
         <oasis:entry colname="col5">2.61</oasis:entry>
         <oasis:entry colname="col6">0.00037</oasis:entry>
         <oasis:entry colname="col7">416.16</oasis:entry>
         <oasis:entry colname="col8">0.81</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

      <p id="d1e1152">The Seine basin is characterized by intensive agriculture (more than 50 %
of the basin; EEA, 2012) and is densely populated. The population is mostly concentrated in the Paris conurbation, which had 12.4 million inhabitants in 2015 (Fig. 1) (INSEE, 2015). Located 70 km downstream of Paris, the largest wastewater treatment plant in Europe (Seine Aval, SAV WWTP) can treat up to <inline-formula><mml:math id="M58" display="inline"><mml:mrow><mml:mn mathvariant="normal">6</mml:mn><mml:mo>×</mml:mo><mml:msup><mml:mn mathvariant="normal">10</mml:mn><mml:mn mathvariant="normal">6</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> per inhabitant equivalent per day, releasing 15.4 m<inline-formula><mml:math id="M59" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M60" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> into the lower Seine River (Syndicat interdépartemental pour l'assainissement de l'agglomération parisienne; French acronym SIAAP, <uri>http://www.siaap.fr/</uri>, last access: 11 February  2020).</p>
</sec>
<sec id="Ch1.S2.SS2">
  <label>2.2</label><title>The pyNuts-Riverstrahler model and its biogeochemical model, RIVE</title>
<sec id="Ch1.S2.SS2.SSSx1" specific-use="unnumbered">
  <title>The biogeochemical model, RIVE</title>
      <p id="d1e1207">The core of the biogeochemical calculation of the pyNuts-Riverstrahler
model (described hereafter) is the RIVE model (e.g., Billen et al., 1994; Garnier et al., 1995, 2002; Servais et al., 2007)
(<uri>https://www.fire.upmc.fr/rive/</uri>, last access: 3 May 2020), which simulates concentrations of oxygen, nutrients (nitrogen, N; phosphorus, P; and silica, Si), particulate suspended matter, and dissolved and particulate organic carbon (three classes of biodegradability) in a homogeneous water column. Biological compartments are represented by three taxonomic classes of phytoplankton (diatoms, Chlorophyceae and Cyanobacteria), two types of zooplankton (rotifers with a short generation time and microcrustaceans with a long generation time), two types of heterotrophic bacteria (small autochthonous and large allochthonous with a higher growth rate than the small ones), and two types of nitrifying bacteria (ammonium-oxidizing bacteria and nitrite-oxidizing bacteria).</p>
      <p id="d1e1213">The model also describes benthic processes (erosion, organic matter degradation, denitrification, etc.) and exchanges with the water column with
the explicit description of benthic organic matter, inorganic particulate P
and benthic biogenic Si state variables. The benthic component does not
explicitly represent all the anaerobic reduction chains, denitrification
being the major anaerobic microbial process.</p>
      <p id="d1e1216">A detailed list of the state variables of the RIVE model is provided in Sect. S1 in the Supplement. Most of the kinetic parameters involved in this description have been previously determined through field or laboratory experiments under controlled conditions and are fixed a priori (see detailed description of all kinetics and parameter values in Garnier et al., 2002). To date, there has been no explicit representation<?pagebreak page2382?> of inorganic carbon in the RIVE model (see this new input in Sect. S1).</p>
      <p id="d1e1219">Riverstrahler allows for the calculation of water quality variables at any
point in the aquatic continuum based on a number of constraints characterizing the watershed, namely, the geomorphology and hydrology of the
river system and the point and diffuse sources of nutrients.</p>
</sec>
<sec id="Ch1.S2.SS2.SSSx2" specific-use="unnumbered">
  <title>Geomorphology</title>
      <p id="d1e1228">A drainage network can be described as subbasins (tributaries) connected
to one or several main axes that define a number of modeling units. The
modeling approach considers the drainage network as a set of river axes
with a spatial resolution of 1 km (axis object), or they can be aggregated
to form subbasins that are idealized as a regular scheme of tributary
confluences where each stream order is described by mean characteristics
(basin object). Here, the Seine drainage network starts from its headwater, ends at its fluvial outlet (Poses), and was divided into 69 modeling units, including
six axes (axis object) and 63 upstream basins (basin object). A map and a
table introducing the main characteristics of the modeling units are
provided in Sect. S2.</p>
</sec>
<sec id="Ch1.S2.SS2.SSSx3" specific-use="unnumbered">
  <title>Hydrology</title>
      <p id="d1e1237">Runoffs were calculated over the whole Seine basin using water discharge
measurements at 48 gauged stations (source: Banque Hydro database,
<uri>http://www.hydro.eaufrance.fr/</uri>, last access: 11 February 2020). Surface and base flow contributions were estimated applying the BFLOW automatic hydrograph separation method (Arnold and Allen, 1999) over the recent time series of water discharges (2010–2017). For the study period (2010–2013), the mean base flow index (BFI <inline-formula><mml:math id="M61" display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 0.71) of the Seine basin indicates the extent of the groundwater contribution to river discharge, with spatial heterogeneity following the main lithological structures (Fig. 1b), but when summarizing the BFI criteria by Strahler order, significant differences did not appear (not shown).</p><?xmltex \hack{\newpage}?>
</sec>
<sec id="Ch1.S2.SS2.SSSx4" specific-use="unnumbered">
  <title>Water temperature</title>
      <p id="d1e1257">Water temperature was calculated according to an empirical relationship,
adjusted on inter-annual averaged observations (2006–2016), and describes
seasonal variation of water temperature in each Strahler order with a 10 d
time step (see Sect. S2).</p>
</sec>
<sec id="Ch1.S2.SS2.SSSx5" specific-use="unnumbered">
  <title>Diffuse and point sources</title>
      <p id="d1e1267">Riverstrahler manages the calculation of the RIVE model according to a
Lagrangian routing of water masses along the hydrographic network (Billen et
al., 1994) and is a generic model of water quality and biogeochemical
functioning of large drainage networks that simulates water quality. PyNuts
is a modeling environment that can calculate the constraints (diffuse and
point sources) on the Riverstrahler model at a multiregional scale (Desmit et
al., 2018, for the Atlantic façade).</p>
</sec>
<sec id="Ch1.S2.SS2.SSS1">
  <label>2.2.1</label><title>Development of an inorganic carbon module</title>
</sec>
<sec id="Ch1.S2.SS2.SSSx6" specific-use="unnumbered">
  <title>Introducing the carbonate system</title>
      <p id="d1e1284">The carbonate system was described by a set of equations  (named the
<inline-formula><mml:math id="M62" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> module) based on a previous representation provided by Gypens et al. (2004) and adapted for freshwater environments (Nathalie Gypens and Alberto Vieira Borges, personal communication, 2016). This <inline-formula><mml:math id="M63" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> module was fully integrated in the RIVE model (Fig. 2). It aims to compute the speciation of the carbonate system based on two new state variables, dissolved inorganic carbon (DIC) and total alkalinity (TA), making it possible to calculate carbon dioxide (<inline-formula><mml:math id="M64" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>). The module uses three equations (see Sect. S3: Eqs. 1–3) that also calculate bicarbonate (<inline-formula><mml:math id="M65" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HCO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula>), carbonate (<inline-formula><mml:math id="M66" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mrow><mml:mn mathvariant="normal">2</mml:mn><mml:mo>-</mml:mo></mml:mrow></mml:msubsup></mml:mrow></mml:math></inline-formula>) and hydronium (<inline-formula><mml:math id="M67" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msub><mml:msup><mml:mi mathvariant="normal">O</mml:mi><mml:mo>+</mml:mo></mml:msup></mml:mrow></mml:math></inline-formula>). Indeed, two variables of the carbonate system are sufficient to calculate all the other components (Zeebe and Wolf-Gladrow, 2001). Here, DIC and TA were selected because the biological processes involved in their spatiotemporal<?pagebreak page2383?> variability along the aquatic continuum were already included in the RIVE model (Fig. 2). We calculated pH as a function of TA and DIC using the Culberson equation (Culberson, 1980) (Sect. S3.4).</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F2" specific-use="star"><?xmltex \currentcnt{2}?><label>Figure 2</label><caption><p id="d1e1368">Schematic representation of the ecological RIVE model (initially developed by Billen et al., 1994, and Garnier and Billen, 1994), with gray lines indicating the main processes simulated in the water column and at the interface with sediment (oxygen not shown), and implementation of the new inorganic module, based on total alkalinity (TA, maroon) and dissolved inorganic carbon (DIC, blue).</p></caption>
            <?xmltex \igopts{width=341.433071pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f02.png"/>

          </fig>

<?xmltex \hack{\vspace*{1mm}}?>
</sec>
<sec id="Ch1.S2.SS2.SSSx7" specific-use="unnumbered">
  <title>Aquatic processes affecting TA and DIC</title>
      <p id="d1e1385"><?xmltex \hack{\vspace*{1mm}}?>The exchange of <inline-formula><mml:math id="M68" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> between the water surface and the atmosphere
depends, respectively, on the gas transfer velocity (<inline-formula><mml:math id="M69" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> value) and on the
sign of the <inline-formula><mml:math id="M70" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentration gradient at the water surface–atmosphere interface (Sect. S3.5). Change in p<inline-formula><mml:math id="M71" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> will in turn affect DIC concentrations (see Table 2, Eq. 1). Dissolved or particulate organic matter is mostly degraded by microbial activities (more or less quickly depending on their biodegradability), resulting in <inline-formula><mml:math id="M72" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and <inline-formula><mml:math id="M73" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HCO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> production (Servais et al., 1995), thus inducing a change in DIC and TA concentrations in the water column (Table 2, Eq. 2, Fig. 2). Photosynthesis and denitrification processes also affect DIC and TA (Table 2, Eqs. 3–5), while instream nitrification only influences TA (Table 2, Eq. 6, Fig. 2).</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T2" specific-use="star"><?xmltex \currentcnt{2}?><label>Table 2</label><caption><p id="d1e1457">Stoichiometry of the biogeochemical processes, influencing dissolved
inorganic carbon (DIC) and total alkalinity (TA) in freshwater, as taken into account in the new inorganic carbon module. TA and DIC expressed in mol : mol of the main substrate (either C or N).</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="5">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="right"/>
     <oasis:colspec colnum="4" colname="col4" align="right"/>
     <oasis:colspec colnum="5" colname="col5" align="center"/>
     <oasis:thead>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">Processes</oasis:entry>
         <oasis:entry colname="col2">Equations</oasis:entry>
         <oasis:entry colname="col3">DIC</oasis:entry>
         <oasis:entry colname="col4">TA</oasis:entry>
         <oasis:entry colname="col5">Eq.</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"><inline-formula><mml:math id="M74" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">FCO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M75" display="inline"><mml:mrow><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>(</mml:mo><mml:mi mathvariant="normal">aq</mml:mi><mml:mo>)</mml:mo><mml:mo>↔</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>(</mml:mo><mml:mi mathvariant="normal">g</mml:mi><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3"><inline-formula><mml:math id="M76" display="inline"><mml:mrow><mml:mo>±</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">0</oasis:entry>
         <oasis:entry colname="col5">1</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Aerobic</oasis:entry>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M77" display="inline"><mml:mrow><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">C</mml:mi><mml:mn mathvariant="normal">106</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">263</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">11</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">16</mml:mn></mml:msub><mml:mi mathvariant="normal">P</mml:mi></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">106</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>→</mml:mo><mml:mn mathvariant="normal">92</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">14</mml:mn><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HCO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">16</mml:mn><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HPO</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mrow><mml:mn mathvariant="normal">2</mml:mn><mml:mo>-</mml:mo></mml:mrow></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">92</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3"><inline-formula><mml:math id="M78" display="inline"><mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4"><inline-formula><mml:math id="M79" display="inline"><mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">14</mml:mn><mml:mo>/</mml:mo><mml:mn mathvariant="normal">106</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col5">2</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">degradation</oasis:entry>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Photosynthesis</oasis:entry>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M80" display="inline"><mml:mrow><mml:mn mathvariant="normal">106</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">16</mml:mn><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:msubsup><mml:mi mathvariant="normal">PO</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">122</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">17</mml:mn><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">H</mml:mi><mml:mo>+</mml:mo></mml:msup></mml:mrow><mml:mo>→</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">C</mml:mi><mml:mn mathvariant="normal">106</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">263</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">11</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">16</mml:mn></mml:msub><mml:mi mathvariant="normal">P</mml:mi></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">138</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3"><inline-formula><mml:math id="M81" display="inline"><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4"><inline-formula><mml:math id="M82" display="inline"><mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">17</mml:mn><mml:mo>/</mml:mo><mml:mn mathvariant="normal">106</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col5">3</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">(<inline-formula><mml:math id="M83" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> uptake)</oasis:entry>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Photosynthesis</oasis:entry>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M84" display="inline"><mml:mrow><mml:mn mathvariant="normal">106</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">16</mml:mn><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:msubsup><mml:mi mathvariant="normal">PO</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">106</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow><mml:mo>→</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">C</mml:mi><mml:mn mathvariant="normal">106</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">263</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">11</mml:mn></mml:msub><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">16</mml:mn></mml:msub><mml:mi mathvariant="normal">P</mml:mi></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">106</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">15</mml:mn><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">H</mml:mi><mml:mo>+</mml:mo></mml:msup></mml:mrow></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3"><inline-formula><mml:math id="M85" display="inline"><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4"><inline-formula><mml:math id="M86" display="inline"><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">15</mml:mn><mml:mo>/</mml:mo><mml:mn mathvariant="normal">106</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col5">4</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">(<inline-formula><mml:math id="M87" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> uptake)</oasis:entry>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">Denitrification</oasis:entry>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M88" display="inline"><mml:mrow><mml:mn mathvariant="normal">5</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CH</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">4</mml:mn><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">4</mml:mn><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">H</mml:mi><mml:mo>+</mml:mo></mml:msup></mml:mrow><mml:mo>→</mml:mo><mml:mn mathvariant="normal">5</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">2</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">7</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3"><inline-formula><mml:math id="M89" display="inline"><mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4"><inline-formula><mml:math id="M90" display="inline"><mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">4</mml:mn><mml:mo>/</mml:mo><mml:mn mathvariant="normal">5</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col5">5</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Nitrification</oasis:entry>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M91" display="inline"><mml:mrow><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow><mml:mo>+</mml:mo><mml:mn mathvariant="normal">2</mml:mn><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>→</mml:mo><mml:mn mathvariant="normal">2</mml:mn><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">H</mml:mi><mml:mo>+</mml:mo></mml:msup></mml:mrow><mml:mo>+</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">H</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow><mml:mo>+</mml:mo><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4"><inline-formula><mml:math id="M92" display="inline"><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col5">6</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

<?xmltex \hack{\vspace*{1mm}}?>
</sec>
<sec id="Ch1.S2.SS2.SSSx8" specific-use="unnumbered">
  <title>State equations and parameters of the inorganic carbon module</title>
      <p id="d1e2232"><?xmltex \hack{\vspace*{1mm}}?>These processes affecting TA and DIC result in equations governing inorganic
carbon dynamics as follows:
              <disp-formula id="Ch1.E1" content-type="numbered"><label>1</label><mml:math id="M93" display="block"><mml:mrow><mml:mi mathvariant="normal">TA</mml:mi><mml:mo>=</mml:mo><mml:msub><mml:mi mathvariant="normal">TA</mml:mi><mml:mrow><mml:mi>t</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msub><mml:mo>+</mml:mo><mml:mi mathvariant="normal">d</mml:mi><mml:mi>t</mml:mi><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mi mathvariant="normal">dTA</mml:mi><mml:mrow><mml:mi mathvariant="normal">d</mml:mi><mml:mi>t</mml:mi></mml:mrow></mml:mfrac></mml:mstyle><mml:mo>+</mml:mo><mml:msub><mml:mi mathvariant="normal">TA</mml:mi><mml:mi mathvariant="normal">inputs</mml:mi></mml:msub><mml:mo>,</mml:mo></mml:mrow></mml:math></disp-formula>
            with
              <disp-formula id="Ch1.E2" content-type="numbered"><label>2</label><mml:math id="M94" display="block"><mml:mtable rowspacing="0.2ex" columnspacing="1em" class="split" displaystyle="true" columnalign="right left"><mml:mtr><mml:mtd><mml:mrow><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mi mathvariant="normal">dTA</mml:mi><mml:mrow><mml:mi mathvariant="normal">d</mml:mi><mml:mi>t</mml:mi></mml:mrow></mml:mfrac></mml:mstyle></mml:mrow></mml:mtd><mml:mtd><mml:mrow><mml:mo>=</mml:mo><mml:mfenced close="" open="("><mml:mrow><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mn mathvariant="normal">14</mml:mn><mml:mn mathvariant="normal">106</mml:mn></mml:mfrac></mml:mstyle><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mrow><mml:mo>(</mml:mo><mml:mi mathvariant="normal">respbact</mml:mi><mml:mo>+</mml:mo><mml:mi mathvariant="normal">respZoo</mml:mi><mml:mo>+</mml:mo><mml:mi mathvariant="normal">respBent</mml:mi><mml:mo>)</mml:mo></mml:mrow><mml:mrow><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>C</mml:mi><mml:mo>)</mml:mo></mml:mrow></mml:mfrac></mml:mstyle></mml:mrow></mml:mfenced></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd/><mml:mtd><mml:mrow><mml:mfenced close="" open=""><mml:mrow><mml:mo>+</mml:mo><mml:mfenced open="(" close=")"><mml:mrow><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mn mathvariant="normal">4</mml:mn><mml:mn mathvariant="normal">5</mml:mn></mml:mfrac></mml:mstyle><mml:mi mathvariant="normal">Denit</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn><mml:mo>⋅</mml:mo><mml:mi mathvariant="normal">nitr</mml:mi><mml:msup><mml:mo>[</mml:mo><mml:mo>′</mml:mo></mml:msup><mml:msup><mml:mi mathvariant="normal">AOB</mml:mi><mml:mo>′</mml:mo></mml:msup><mml:mo>]</mml:mo></mml:mrow></mml:mfenced><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>N</mml:mi><mml:msup><mml:mo>)</mml:mo><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:mrow></mml:mfenced></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd/><mml:mtd><mml:mrow><mml:mfenced close="" open=""><mml:mrow><mml:mo>+</mml:mo><mml:mfenced open="(" close=")"><mml:mrow><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mn mathvariant="normal">17</mml:mn><mml:mn mathvariant="normal">106</mml:mn></mml:mfrac></mml:mstyle><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mrow><mml:mi mathvariant="normal">uptPhy</mml:mi><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:mrow><mml:mi mathvariant="normal">uptPhyN</mml:mi></mml:mfrac></mml:mstyle><mml:mo>-</mml:mo><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mn mathvariant="normal">15</mml:mn><mml:mn mathvariant="normal">106</mml:mn></mml:mfrac></mml:mstyle><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mrow><mml:mi mathvariant="normal">uptPhy</mml:mi><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow></mml:mrow><mml:mi mathvariant="normal">uptPhyN</mml:mi></mml:mfrac></mml:mstyle></mml:mrow></mml:mfenced></mml:mrow></mml:mfenced></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd/><mml:mtd><mml:mrow><mml:mfenced close=")" open=""><mml:mrow><mml:mo>⋅</mml:mo><mml:mi mathvariant="normal">phot</mml:mi><mml:mo>⋅</mml:mo><mml:mi>M</mml:mi><mml:msup><mml:mfenced open="(" close=")"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:mfenced><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:mrow></mml:mfenced><mml:mn mathvariant="normal">1000</mml:mn><mml:mo>,</mml:mo></mml:mrow></mml:mtd></mml:mtr></mml:mtable></mml:math></disp-formula>
            where TA<inline-formula><mml:math id="M95" display="inline"><mml:msub><mml:mi/><mml:mrow><mml:mi>t</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msub></mml:math></inline-formula> is the value of TA (<inline-formula><mml:math id="M96" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M97" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) in the previous time step (<inline-formula><mml:math id="M98" display="inline"><mml:mrow><mml:mi>t</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula>). Respbact, RespZoo and respBent are respectively the heterotrophic planktonic respiration of bacteria, zooplankton and benthic
bacteria already included in RIVE (mg C L<inline-formula><mml:math id="M99" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M100" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>). <inline-formula><mml:math id="M101" display="inline"><mml:mrow><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>C</mml:mi><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula> is the molar mass of the carbon (12 g mol<inline-formula><mml:math id="M102" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>). Denit and nitr[<inline-formula><mml:math id="M103" display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula>AOB<inline-formula><mml:math id="M104" display="inline"><mml:msup><mml:mi/><mml:mo>′</mml:mo></mml:msup></mml:math></inline-formula>] are respectively the processes of denitrification and nitrification by ammonia-oxidizing bacteria (AOB) as implemented in the RIVE model (mg N L<inline-formula><mml:math id="M105" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M106" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>); <inline-formula><mml:math id="M107" display="inline"><mml:mrow><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>N</mml:mi><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula> is the molar mass of the nitrogen (14 g mol<inline-formula><mml:math id="M108" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>). phot is the net photosynthesis (mg <inline-formula><mml:math id="M109" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> L<inline-formula><mml:math id="M110" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M111" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>). uptPhyN is the nitrogen uptake by
phytoplankton (mg N L<inline-formula><mml:math id="M112" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M113" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) which is differentiated for nitrate
(uptPhy<inline-formula><mml:math id="M114" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula>, mg C L<inline-formula><mml:math id="M115" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M116" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) and ammonium (uptPhy<inline-formula><mml:math id="M117" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula>, mg C L<inline-formula><mml:math id="M118" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M119" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), and <inline-formula><mml:math id="M120" display="inline"><mml:mrow><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow><mml:mo>)</mml:mo></mml:mrow></mml:math></inline-formula> is the molar mass of the dioxygen (32 g mol<inline-formula><mml:math id="M121" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>). TA<inline-formula><mml:math id="M122" display="inline"><mml:msub><mml:mi/><mml:mi mathvariant="normal">inputs</mml:mi></mml:msub></mml:math></inline-formula> is TA (<inline-formula><mml:math id="M123" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M124" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) entering the water column by diffuse sources (groundwater and subsurface discharges) and point sources (WWTPs).
              <disp-formula id="Ch1.E3" content-type="numbered"><label>3</label><mml:math id="M125" display="block"><mml:mrow><mml:mi mathvariant="normal">DIC</mml:mi><mml:mo>=</mml:mo><mml:msub><mml:mi mathvariant="normal">DIC</mml:mi><mml:mrow><mml:mi>t</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msub><mml:mo>+</mml:mo><mml:mi mathvariant="normal">d</mml:mi><mml:mi>t</mml:mi><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mi mathvariant="normal">dDIC</mml:mi><mml:mrow><mml:mi mathvariant="normal">d</mml:mi><mml:mi>t</mml:mi></mml:mrow></mml:mfrac></mml:mstyle><mml:mo>+</mml:mo><mml:msub><mml:mi mathvariant="normal">DIC</mml:mi><mml:mi mathvariant="normal">inputs</mml:mi></mml:msub><mml:mo>,</mml:mo></mml:mrow></mml:math></disp-formula>
            with
              <disp-formula id="Ch1.E4" content-type="numbered"><label>4</label><mml:math id="M126" display="block"><mml:mtable class="split" rowspacing="0.2ex" columnspacing="1em" displaystyle="true" columnalign="right left"><mml:mtr><mml:mtd><mml:mrow><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mi mathvariant="normal">dDIC</mml:mi><mml:mrow><mml:mi mathvariant="normal">d</mml:mi><mml:mi>t</mml:mi></mml:mrow></mml:mfrac></mml:mstyle></mml:mrow></mml:mtd><mml:mtd><mml:mrow><mml:mo>=</mml:mo><mml:mo>(</mml:mo><mml:mi mathvariant="normal">respbact</mml:mi><mml:mo>+</mml:mo><mml:mi mathvariant="normal">respZoo</mml:mi><mml:mo>+</mml:mo><mml:mi mathvariant="normal">respBent</mml:mi><mml:mo>)</mml:mo></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd/><mml:mtd><mml:mrow><mml:mo>+</mml:mo><mml:mi mathvariant="normal">denit</mml:mi><mml:mo>⋅</mml:mo><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>C</mml:mi><mml:mo>)</mml:mo><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>N</mml:mi><mml:msup><mml:mo>)</mml:mo><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup><mml:mo>+</mml:mo><mml:mi mathvariant="normal">phot</mml:mi><mml:mi>M</mml:mi><mml:mo>(</mml:mo><mml:mi>C</mml:mi><mml:mo>)</mml:mo></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd/><mml:mtd><mml:mrow><mml:mo>⋅</mml:mo><mml:mi>M</mml:mi><mml:msup><mml:mfenced open="(" close=")"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">O</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:mfenced><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup><mml:mo>+</mml:mo><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mrow><mml:msub><mml:mi>F</mml:mi><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:msub></mml:mrow><mml:mi mathvariant="normal">depth</mml:mi></mml:mfrac></mml:mstyle><mml:mo>,</mml:mo></mml:mrow></mml:mtd></mml:mtr></mml:mtable></mml:math></disp-formula>
            where DIC<inline-formula><mml:math id="M127" display="inline"><mml:msub><mml:mi/><mml:mrow><mml:mi>t</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msub></mml:math></inline-formula> is the value of DIC (mg C L<inline-formula><mml:math id="M128" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) in the previous time step (<inline-formula><mml:math id="M129" display="inline"><mml:mrow><mml:mi>t</mml:mi><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula>). <inline-formula><mml:math id="M130" display="inline"><mml:mrow><mml:msub><mml:mi>F</mml:mi><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:msub></mml:mrow></mml:math></inline-formula> is the <inline-formula><mml:math id="M131" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> flux at the water–atmosphere interface in mg C m<inline-formula><mml:math id="M132" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> h<inline-formula><mml:math id="M133" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> described in Sect. S3.5; depth is the water column depth (m).</p>
      <p id="d1e3087">The different values of constants and parameters used in the inorganic carbon module are introduced in Table 1 of Sect. S3.6. The full inorganic carbon module is described in Sect. S3 (Sects. 3.1 to 3.6).</p>
</sec>
<sec id="Ch1.S2.SS2.SSS2">
  <label>2.2.2</label><title>Input constraints of the pyNuts-Riverstrahler model</title>
</sec>
<sec id="Ch1.S2.SS2.SSSx9" specific-use="unnumbered">
  <title>Diffuse sources from soil and groundwater</title>
      <p id="d1e3105">Diffuse sources are calculated at the scale of each modeling unit, based on
several spatially explicit databases describing natural and anthropogenic
constraints on the Seine River basin. Diffuse sources are taken into account
by assigning a yearly mean concentration of carbon and nutrients to
subsurface and groundwater flow components, respectively. These concentrations are then combined with a 10 d time step description of
surface and base flows to simulate the seasonal contribution of diffuse
emissions to the river system. For nutrients, several applications of the
Riverstrahler on the Seine River basin refined the quantification of diffuse
sources: e.g., Billen and Garnier (1999) and Billen et al. (2018) for nitrogen; Aissa-Grouz et al. (2018) for phosphorus; Billen et al. (2007), Sferratore et al. (2008) and Thieu et al. (2009) for N, P and Si. In this study we revised our estimates for diffuse organic carbon sources and propose TA and DIC values for the Seine basin. The summary of all the carbon-related inputs of the model is provided in Table 3.</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T3" specific-use="star"><?xmltex \currentcnt{3}?><label>Table 3</label><caption><p id="d1e3111">Summary of the carbon related inputs of the pyNuts-Riverstrahler
model.</p></caption><oasis:table frame="topbot"><?xmltex \begin{scaleboxenv}{.89}[.89]?><oasis:tgroup cols="6">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="left"/>
     <oasis:colspec colnum="4" colname="col4" align="left"/>
     <oasis:colspec colnum="5" colname="col5" align="left"/>
     <oasis:colspec colnum="6" colname="col6" align="left"/>
     <oasis:thead>
       <oasis:row>
         <oasis:entry colname="col1">Input</oasis:entry>
         <oasis:entry colname="col2">Flow</oasis:entry>
         <oasis:entry colname="col3">Database</oasis:entry>
         <oasis:entry colname="col4">Averaged</oasis:entry>
         <oasis:entry colname="col5">Values</oasis:entry>
         <oasis:entry colname="col6">Source</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">variables</oasis:entry>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">DOC</oasis:entry>
         <oasis:entry colname="col2">subsurface</oasis:entry>
         <oasis:entry colname="col3">AESN</oasis:entry>
         <oasis:entry colname="col4">land use</oasis:entry>
         <oasis:entry colname="col5">mean: 3.13 mg C L<inline-formula><mml:math id="M134" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; SD: 4.56 mg C L<inline-formula><mml:math id="M135" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>;</oasis:entry>
         <oasis:entry colname="col6"><uri>http://www.eau-seine-normandie.fr/</uri></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6">(last access: 3 May 2020)</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">groundwater</oasis:entry>
         <oasis:entry colname="col3">ADES</oasis:entry>
         <oasis:entry colname="col4">MESO units</oasis:entry>
         <oasis:entry colname="col5">mean: 0.91 mg C L<inline-formula><mml:math id="M136" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; SD: 0.8 mg C L<inline-formula><mml:math id="M137" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6"><uri>https://ades.eaufrance.fr/</uri></oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6">(last access: 3 May 2020)</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">POC</oasis:entry>
         <oasis:entry colname="col2">subsurface</oasis:entry>
         <oasis:entry colname="col3">LUCAS,</oasis:entry>
         <oasis:entry colname="col4">based on estimated</oasis:entry>
         <oasis:entry colname="col5">mean: 8.2 mg C L<inline-formula><mml:math id="M138" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, SD: 10.4 mg C L<inline-formula><mml:math id="M139" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">Aksoy et al. (2016)</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">groundwater</oasis:entry>
         <oasis:entry colname="col3">BioSoil and</oasis:entry>
         <oasis:entry colname="col4">total suspended</oasis:entry>
         <oasis:entry colname="col5">mean: 0.8 mg C L<inline-formula><mml:math id="M140" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, SD: 1.0 mg C L<inline-formula><mml:math id="M141" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">SoilTrEC</oasis:entry>
         <oasis:entry colname="col4">solids (TSS) fluxes,</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">Projects</oasis:entry>
         <oasis:entry colname="col4">associated with a soil</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">organic carbon</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">(SOC) content</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">DIC</oasis:entry>
         <oasis:entry colname="col2">subsurface</oasis:entry>
         <oasis:entry colname="col3">ADES</oasis:entry>
         <oasis:entry colname="col4">MESO units</oasis:entry>
         <oasis:entry colname="col5">from 25 to 92 mg C L<inline-formula><mml:math id="M142" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6"><uri>https://ades.eaufrance.fr/</uri></oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">groundwater</oasis:entry>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5">from 25 to 92 mg C L<inline-formula><mml:math id="M143" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">(last access: 3 May 2020)</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">TA</oasis:entry>
         <oasis:entry colname="col2">subsurface</oasis:entry>
         <oasis:entry colname="col3">ADES</oasis:entry>
         <oasis:entry colname="col4">MESO units</oasis:entry>
         <oasis:entry colname="col5">from 663 to 5580 <inline-formula><mml:math id="M144" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M145" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6"><uri>https://ades.eaufrance.fr/</uri></oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">groundwater</oasis:entry>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5">from 663 to 5580 <inline-formula><mml:math id="M146" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M147" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">(last access: 3 May 2020)</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">DOC</oasis:entry>
         <oasis:entry colname="col2">point sources</oasis:entry>
         <oasis:entry colname="col3">measurements</oasis:entry>
         <oasis:entry colname="col4">according to</oasis:entry>
         <oasis:entry colname="col5">2.9 to 9.4 g C per inhabitant per day</oasis:entry>
         <oasis:entry colname="col6">Garnier et al. (2006),</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">WWTP treatment</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6">Servais et al. (1999)</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">and capacity</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">POC</oasis:entry>
         <oasis:entry colname="col2">point sources</oasis:entry>
         <oasis:entry colname="col3">measurements</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5">0.9 to 24 g C per inhabitant per day</oasis:entry>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">DIC</oasis:entry>
         <oasis:entry colname="col2">point sources</oasis:entry>
         <oasis:entry colname="col3">measurements</oasis:entry>
         <oasis:entry colname="col4">weighted mean by</oasis:entry>
         <oasis:entry colname="col5">70 mg C L<inline-formula><mml:math id="M148" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">this study</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">WWTP capacity</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">TA</oasis:entry>
         <oasis:entry colname="col2">point sources</oasis:entry>
         <oasis:entry colname="col3">measurements</oasis:entry>
         <oasis:entry colname="col4">weighted mean by</oasis:entry>
         <oasis:entry colname="col5">3993 <inline-formula><mml:math id="M149" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M150" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">this study</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">WWTP capacity</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">DIC</oasis:entry>
         <oasis:entry colname="col2">reservoirs</oasis:entry>
         <oasis:entry colname="col3">measurements</oasis:entry>
         <oasis:entry colname="col4">by year</oasis:entry>
         <oasis:entry colname="col5">mean: 23 mg C L<inline-formula><mml:math id="M151" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; SD: 4 mg C L<inline-formula><mml:math id="M152" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">this study</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">in the Der</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">Lake</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">TA</oasis:entry>
         <oasis:entry colname="col2">reservoirs</oasis:entry>
         <oasis:entry colname="col3">measurements</oasis:entry>
         <oasis:entry colname="col4">by year</oasis:entry>
         <oasis:entry colname="col5">mean: 1890 <inline-formula><mml:math id="M153" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M154" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; SD: 350 <inline-formula><mml:math id="M155" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M156" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col6">this study</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">in the Der</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">lake</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup><?xmltex \end{scaleboxenv}?></oasis:table></table-wrap>

      <p id="d1e3968">Dissolved organic carbon (DOC) input concentrations were extracted from the
AESN database (<uri>http://www.eau-seine-normandie.fr/</uri>, last access: 11 February 2020) and averaged by land use for subsurface sources (mean: 3.13 mg C L<inline-formula><mml:math id="M157" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; standard deviation (SD): 4.56 mg C L<inline-formula><mml:math id="M158" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; 3225 data for 2010–2013). For groundwater sources, concentrations were extracted from the ADES database (<uri>https://ades.eaufrance.fr/</uri>, last access: 11 February 2020) and<?pagebreak page2384?> averaged by MESO waterbodies (French name: Masse d'Eau SOuterraine, see Sect. S4; mean: 0.91 mg C L<inline-formula><mml:math id="M159" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; SD: 0.8 mg C L<inline-formula><mml:math id="M160" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; 16 000 data for 2010–2013). These concentrations were separated into three pools of different biodegradability levels, with 7.5 % rapidly biodegradable, 17.5 % slowly biodegradable and 75 % refractory DOC for subsurface sources and 100 % refractory DOC for groundwater flow (Garnier, unpublished).</p>
      <p id="d1e4026">Total POC inputs were calculated based on estimated total suspended solid (TSS) fluxes, associated with soil organic carbon (SOC) content provided by the LUCAS Project (samples from agricultural soil; Tóth et al., 2013), the BioSoil Project (samples from European forest soil; Lacarce et al., 2009) and the Soil Transformations in European Catchments (SoilTrEC) project (samples from local soil data from five different critical zone observatories (CZOs) in Europe; Menon et al., 2014; Aksoy et al., 2016). TSS concentrations were calculated using fluxes of TSS provided by
WaTEM-SEDEM (Borrelli et al., 2018) and runoffs averaged over the 1970–2000 period (SAFRAN-ISBA-MODCOU, SIM; Habets et al., 2008). The POC mean was 8.2 mg C L<inline-formula><mml:math id="M161" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> and its SD was 10.4 mg C L<inline-formula><mml:math id="M162" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> in subsurface runoff, and the groundwater discharge mean was 0.8 mg C L<inline-formula><mml:math id="M163" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> and its SD was 1.0 mg C L<inline-formula><mml:math id="M164" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>. The same ratio of DOC reactivity was applied for three classes of POC degradability. The kinetics for POC<?pagebreak page2385?> and DOC hydrolysis and parameters however are different (Billen and Servais, 1989; Garnier et al., 2002).</p>
      <p id="d1e4078">DIC and TA are brought by subsurface and groundwater discharges (Venkiteswaran et al., 2014). DIC is defined by the sum of bicarbonates (<inline-formula><mml:math id="M165" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HCO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula>), carbonates (<inline-formula><mml:math id="M166" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula>) and <inline-formula><mml:math id="M167" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>. Unlike <inline-formula><mml:math id="M168" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HCO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> and <inline-formula><mml:math id="M169" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> measured in
groundwater on a regular basis by French authorities (ADES,  <uri>https://ades.eaufrance.fr/</uri>, last access: 11 February 2020), <inline-formula><mml:math id="M170" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations were not measured in their survey. TA values are also provided in the ADES database.</p>
      <p id="d1e4159">To calculate DIC concentrations in groundwater, we therefore used our own
<inline-formula><mml:math id="M171" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> measurements, equaling on average 15.92 mg C L<inline-formula><mml:math id="M172" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, with an SD of 7.12 mg C L<inline-formula><mml:math id="M173" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> (55 measurements in six piezometers in the Brie aquifer during 2016–2017) (see methodology in Marescaux et al., 2018a). DIC and TA were averaged for the 48 unconfined hydrogeological MESO units of the basin (see concentrations in Sect. S4) during the recent period (2010–2015),
including the simulation period. In Fig. 3, a summary of TA and DIC inputs by MESO units is shown by grouping MESO units according to lithology and geological ages.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F3"><?xmltex \currentcnt{3}?><label>Figure 3</label><caption><p id="d1e4199">Boxplots of total alkalinity (<inline-formula><mml:math id="M174" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M175" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) and dissolved inorganic carbon (DIC, mg C L<inline-formula><mml:math id="M176" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) groundwater concentrations by grouping the MESO units. The lower, intermediate and upper parts of the boxes represent, respectively, the 25th, 50th and 75th percentiles, and the circles represent the outlier values (source: ADES). The color code is the same as the one in S4 spatially representing the MESO units of the basin.</p></caption>
            <?xmltex \igopts{width=199.169291pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f03.png"/>

          </fig>

      <p id="d1e4240"><?xmltex \hack{\newpage}?>Documenting TA and DIC diffuse sources based on MESO units ensures a
representation of their spatial heterogeneity in the Seine River basin.
Carbonate waters showed higher TA and DIC mean concentrations while
crystalline waters had the lowest mean concentrations in TA and DIC (primary
and anterior basements from the Devonian; Fig. 3). Aquifers from the Tertiary and
alluvium from the Quaternary had a more heterogeneous distribution of their
concentrations (Fig. 3). TA and DIC by MESO units were then spatially averaged at the scale of each modeling unit of the pyNuts-Riverstrahler model (69 modeling units, subdivided according to Strahler ordination; Sect. S2), thus forming a semi-distributed estimate of groundwater concentrations.</p>
      <?pagebreak page2386?><p id="d1e4244">TA and DIC measurements in lower-order streams cannot be considered as
representative of subsurface concentrations because lower-order streams are
expected to degas strongly in a few hundred meters, as shown for <inline-formula><mml:math id="M177" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula> by Garnier et al. (2009) and for <inline-formula><mml:math id="M178" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> by Öquist et al. (2009). We have considered similar concentrations and spatial distribution for subsurface components to those obtained for groundwater (from 25 to 92 mg C L<inline-formula><mml:math id="M179" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> DIC, and from 663 to 5580 <inline-formula><mml:math id="M180" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M181" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> TA; Fig. 3).</p>
</sec>
<sec id="Ch1.S2.SS2.SSSx10" specific-use="unnumbered">
  <title>Point sources from WWTP effluents</title>
      <p id="d1e4309">The pyNuts-Riverstrahler model integrates carbon and nutrient raw emissions
from the local population starting from the collection of household emissions into sewage networks until their release after specific treatments in WWTPs. In the Seine River basin, most of these releases are adequately treated before being discharged to the drainage network. DOC discharge from WWTPs was described according to treatment type, ranging from 2.9 to 9.4 g C
per inhabitant per day while POC discharge ranged from 0.9 to 24 g C per inhabitant per day based on the sample of water purification treatment
observed in the Seine basin (Garnier et al., 2006; Servais et al., 1999).</p>
      <p id="d1e4312">TA and DIC were measured at eight WWTPs selected to reflect various
treatment capacities (from <inline-formula><mml:math id="M182" display="inline"><mml:mrow><mml:mn mathvariant="normal">6</mml:mn><mml:mo>×</mml:mo><mml:msup><mml:mn mathvariant="normal">10</mml:mn><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> to <inline-formula><mml:math id="M183" display="inline"><mml:mrow><mml:mn mathvariant="normal">6</mml:mn><mml:mo>×</mml:mo><mml:msup><mml:mn mathvariant="normal">10</mml:mn><mml:mn mathvariant="normal">6</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> inhabitant equivalents) and different treatment types (activated, sludge, Biostyr<sup>®</sup> Biological Aerated Filter) in the Seine River basin. Sampling and analysis protocols are provided in Sect. S5. This sampling did not allow us to highlight differences in per capita TA and DIC emissions. Consequently, we used a fixed value of 3993 <inline-formula><mml:math id="M184" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M185" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> for TA and 70 mg C L<inline-formula><mml:math id="M186" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> for DIC, which correspond to the weighted mean by WWTP capacity of our measurements and are in agreement with values from Alshboul et al. (2016) found in the literature.</p>
</sec>
<sec id="Ch1.S2.SS2.SSSx11" specific-use="unnumbered">
  <title>Impact of the reservoirs</title>
      <p id="d1e4387">Nutrients and organic carbon cycling within the three reservoirs of the Seine River network were simulated using the biogeochemical RIVE model adapted for stagnant aquatic systems (Garnier et al., 1999). Owing to the absence of an inorganic carbon module in the modeling of reservoirs, we used mean measurements of TA and DIC in reservoirs as forcing variables to the river network. The Der lake reservoir was sampled 3 times (24 May 2016, 12 September 2016, 16 March 2017) and, among others, TA and DIC were measured (see Table 3). Recent sampling campaigns showed that TA and DIC are
similar for the three reservoirs (Xingcheng Yan, personal communication, 2019).</p>
</sec>
<sec id="Ch1.S2.SS2.SSS3">
  <label>2.2.3</label><title>Observational data</title>
      <p id="d1e4398">We selected the 2010–2013 timeframe for setting up and validating the new
inorganic module. This period includes the year 2011, which was particularly
dry in summer (mean annual water discharge at Poses, 366 m<inline-formula><mml:math id="M187" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M188" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>)
and 2013, which was wet (mean annual average water discharge at Poses, 717 m<inline-formula><mml:math id="M189" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M190" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) while 2010 and 2012 showed intermediate hydrological
conditions (mean annual average water discharges at Poses, 418 and 458 m<inline-formula><mml:math id="M191" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M192" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, respectively) (data source: Banque Hydro).</p>
      <p id="d1e4465">The <inline-formula><mml:math id="M193" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> values (ppmv) were calculated using CO2SYS software algorithms (version 25b06; Pierrot et al., 2006) based on existing data collected by the AESN. TA, pH and water temperature datasets were used for the 2010–2013 selected period (8693 records for these three variables, i.e., around 1209 stations distributed throughout the Seine basin, measurements that were taken at a fixed time, 09:00–15:00 UTC, and
could not represent diurnal fluctuations). The carbonate dissociation
constants (K1 and K2) applied were calculated from Millero (1979) with zero salinity and depending on the water temperature. Because <inline-formula><mml:math id="M194" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> calculations from pH and TA can lead to overestimation of <inline-formula><mml:math id="M195" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> (Abril et al., 2015), the <inline-formula><mml:math id="M196" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> calculated data were corrected by a relationship established for the Seine River and based on <inline-formula><mml:math id="M197" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> field
measurements (Marescaux et al., 2018b). To compute the interannual average over the 2010–2013 period, data were averaged monthly, then annually at each measurement station and then spatially averaged (i.e., by Strahler orders). Four stations offering sufficient data for the 2010–2013 period were selected for appraising seasonal patterns. They are located along the main stem of the Marne–lower Seine River: Poses (the outlet), Poissy (downstream of the SAV WWTP), Paris and Ferté-sous-Jouarre (upstream of Paris) (Fig. 1a).</p>
      <?pagebreak page2387?><p id="d1e4533"><?xmltex \hack{\newpage}?>All data were processed using R (R Core team, 2015) and QGIS (QGIS Development Team, 2016). Kruskal–Wallis tests were used to compare simulated and measured <inline-formula><mml:math id="M198" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> averages.</p>
</sec>
<sec id="Ch1.S2.SS2.SSS4">
  <label>2.2.4</label><title>Evaluation of the model</title>
      <p id="d1e4558">Root mean square errors normalized to the range of the observed data (NRMSEs)
were used to evaluate the pyNuts-Riverstrahler model including the inorganic
module, indicating the variability of the model results with respect to the
observations, normalized to the variability of the observations. NRMSE
analyses were performed on inter-annual variations once every 10 d for the
2010–2013 period, combining observations and simulations at four main
monitoring stations along the longitudinal profile of the Seine River:
Poses, Poissy (downstream of Paris), Paris and Ferté-sous-Jouarre
(upstream of Paris).</p>
</sec>
</sec>
</sec>
<sec id="Ch1.S3">
  <label>3</label><title>Results</title>
<sec id="Ch1.S3.SS1">
  <label>3.1</label><?xmltex \opttitle{Simulations of spatial and seasonal variations of {$\protect\chem{\mathit{p}CO_{{2}}}$}}?><title>Simulations of spatial and seasonal variations of <inline-formula><mml:math id="M199" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula></title>
<sec id="Ch1.S3.SS1.SSS1">
  <label>3.1.1</label><?xmltex \opttitle{{$\protect\chem{CO_{{2}}}$} from lower-order streams to larger sections of the Seine River}?><title><inline-formula><mml:math id="M200" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> from lower-order streams to larger sections of the Seine River</title>
      <p id="d1e4609">Simulations of <inline-formula><mml:math id="M201" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations averaged for 2010–2013 by Strahler orders showed that pyNuts-Riverstrahler succeeded in reproducing the general trends of <inline-formula><mml:math id="M202" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> observations (7565 data) (Fig. 4). Although differences in <inline-formula><mml:math id="M203" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations between the different order streams were not significant, their means tended to decrease from lower-order streams (SO1) (width <inline-formula><mml:math id="M204" display="inline"><mml:mo>&lt;</mml:mo></mml:math></inline-formula> 100 m) to SO5, and to finally increase in the higher-order streams (width <inline-formula><mml:math id="M205" display="inline"><mml:mo>&gt;</mml:mo></mml:math></inline-formula> 100 m) from SO6 to SO7, downstream of the Paris conurbation. Some discrepancy appeared for order 1, with simulations
yielding higher values than the observations while for orders 2–7
simulation values were conversely lower than observation values. The
corresponding <inline-formula><mml:math id="M206" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> values calculated for the Seine ranged from 0.04 to 0.23 m h<inline-formula><mml:math id="M207" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> with higher values in the first streams and lower values in larger rivers (not shown), with <inline-formula><mml:math id="M208" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing positively related to the <inline-formula><mml:math id="M209" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> value (Sect. S3.5, Eq. S25).</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F4"><?xmltex \currentcnt{4}?><label>Figure 4</label><caption><p id="d1e4699">Carbon dioxide concentrations in the Seine waters (<inline-formula><mml:math id="M210" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>, mg C L<inline-formula><mml:math id="M211" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) simulated by the pyNuts-Riverstrahler model (dark gray) and observed (light gray ) as a function of the stream order averaged over the 2010–2013 period (whiskers indicating standard deviations).</p></caption>
            <?xmltex \igopts{width=236.157874pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f04.png"/>

          </fig>

</sec>
<sec id="Ch1.S3.SS1.SSS2">
  <label>3.1.2</label><title>Profiles of the main stem Marne and lower Seine (at Poses)</title>
      <p id="d1e4739">In the same period (2010–2013), a focus on the main stem from the Marne
River (SO6) until the outlet of the Seine River (Poses, SO7) showed that the
model correctly reproduced longitudinal variations. Higher concentrations of
<inline-formula><mml:math id="M212" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> downstream of Paris, and a peak of <inline-formula><mml:math id="M213" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations
immediately downstream of the SAV WWTP were followed by a progressive
decrease until the estuary (Fig. 5). Note that the estuarine <inline-formula><mml:math id="M214" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>
concentrations were specifically modeled by Laruelle et al. (2019), using
these outputs of the Riverstrahler simulations.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F5"><?xmltex \currentcnt{5}?><label>Figure 5</label><caption><p id="d1e4777">Observed (dots) and simulated (line) mean carbon dioxide concentrations (<inline-formula><mml:math id="M215" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>, mg C L<inline-formula><mml:math id="M216" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) along the main stem of the Marne River (kilometer <inline-formula><mml:math id="M217" display="inline"><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">350</mml:mn></mml:mrow></mml:math></inline-formula> to 0) and the lower Seine River (kilometer 0–350) averaged over the 2010–2013 period. The simulation envelope (gray area) represents standard deviations of simulated <inline-formula><mml:math id="M218" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations. Whiskers are standard deviations between observed <inline-formula><mml:math id="M219" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations.</p></caption>
            <?xmltex \igopts{width=236.157874pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f05.png"/>

          </fig>

      <?xmltex \floatpos{t}?><fig id="Ch1.F6" specific-use="star"><?xmltex \currentcnt{6}?><label>Figure 6</label><caption><p id="d1e4843">The 10-day simulated (lines) and observed (dots) water discharges over
the 2010–2013 period (<inline-formula><mml:math id="M220" display="inline"><mml:mi>Q</mml:mi></mml:math></inline-formula>, m<inline-formula><mml:math id="M221" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:math></inline-formula> s<inline-formula><mml:math id="M222" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), concentrations of carbon
dioxide (<inline-formula><mml:math id="M223" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>, mg C L<inline-formula><mml:math id="M224" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, and <inline-formula><mml:math id="M225" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> sat, mg C L<inline-formula><mml:math id="M226" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), dissolved inorganic carbon (DIC, mg C L<inline-formula><mml:math id="M227" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), total alkalinity (TA, <inline-formula><mml:math id="M228" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M229" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), pH (–), and phytoplankton (mg C L<inline-formula><mml:math id="M230" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>). Four monitoring stations of interest along the main stem of Marne–lower Seine are shown: Ferté-sous-Jouarre (upstream of Paris on the Marne River), Paris on the lower Seine (upstream at Charenton), downstream of the SAV WWTP and at the outlet of the basin (Poses). NRMSE analyses were performed on inter-annual variations per decade for the 2010–2013 period, combining observations and simulations at four main monitoring stations. The simulation envelope corresponds to standard deviations (gray area). For observed data, whiskers are standard deviations.</p></caption>
            <?xmltex \igopts{width=497.923228pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f06.png"/>

          </fig>

</sec>
<sec id="Ch1.S3.SS1.SSS3">
  <label>3.1.3</label><title>Seasonal variations</title>
      <p id="d1e4979">Upstream, within Paris, and downstream of Paris, the model provides
simulations in the right order of magnitude of the observed <inline-formula><mml:math id="M231" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>, DIC, TA and pH values, despite the fact that TA was underestimated in the two
upstream stations selected for all seasons (Fig. 6). DIC and TA simulations followed the observed seasonal patterns with a depletion of concentrations occurring in summer–autumn related to low-flow support by the reservoirs. Indeed, reservoirs showed lower TA and DIC concentrations than rivers (Table 3). In addition to the intra- and inter-stream order variabilities of <inline-formula><mml:math id="M232" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> (Fig. 4), <inline-formula><mml:math id="M233" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2<?pagebreak page2388?></mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations showed a wide spread
in values over the year (Fig. 6). Although simulated <inline-formula><mml:math id="M234" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations fitted rather well with the level of the observations (NRMSE <inline-formula><mml:math id="M235" display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 15 %), the model tended to overestimate the winter values upstream and within Paris (Fig. 6, left).</p>
      <?pagebreak page2389?><p id="d1e5033">For DIC, simulations upstream from Paris (Fig. 6, right) seemed lower than the observations (but summer data are missing); however, downstream at the
other three stations selected, simulations accurately represented the
observations (Fig. 6, NRMSE <inline-formula><mml:math id="M236" display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 15 %). Seasonal variations of TA were
satisfactorily reproduced by the simulations, although they were slightly
underestimated by the model at the stations upstream and downstream of Paris
(Fig. 6, NRMSE <inline-formula><mml:math id="M237" display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 25 %). Regarding pH, simulations were in a similar
range to the observations (range: 7.5–8.5), and lower summer pH values in
the lower Seine were correctly simulated by the model (Fig. 6, NRMSE <inline-formula><mml:math id="M238" display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 17 %).</p>
      <p id="d1e5057">Although the level of phytoplankton biomass was adequately simulated, the
summer bloom observed at the outlet was not reproduced, whereas the early
spring bloom observed in the lower Seine was simulated with a time lag compared to the observations (Fig. 6, bottom, NRMSE <inline-formula><mml:math id="M239" display="inline"><mml:mo>=</mml:mo></mml:math></inline-formula> 19 %).</p>
</sec>
<sec id="Ch1.S3.SS1.SSS4">
  <label>3.1.4</label><title>Selection of a gas transfer velocity</title>
      <p id="d1e5076">The way of taking into account the gas transfer velocity in the modeling
approach could explain these discrepancies in SO6 and SO7 (Fig. 4). Different values of <inline-formula><mml:math id="M240" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> were explored specifically in the downstream part of the Seine river network (SO6 and SO7 where river width exceeds 100 m) (Fig. 7). Indeed, the gas transfer velocity value reported by Alin et al. (2011)
was used for streams and rivers up to 100 m wide, as they recommended.
Whereas these <inline-formula><mml:math id="M241" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> values provided adequate simulations in the river up to 100 m wide, for river widths greater than 100 m, we tested different <inline-formula><mml:math id="M242" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> values. In larger stream orders, we showed that calculations of <inline-formula><mml:math id="M243" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> according to Eq. (5) of Table 2 by Raymond et al. (2012) induced an
outgassing that was too high, while when not using any <inline-formula><mml:math id="M244" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> value for these larger rivers, the
opposite behavior was observed, with no outgassing of <inline-formula><mml:math id="M245" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>.</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F7"><?xmltex \currentcnt{7}?><label>Figure 7</label><caption><p id="d1e5128">Influence of the gas transfer velocity formalisms along the main stem of the Seine River basin (Marne–lower Seine River) impacted riverine
<inline-formula><mml:math id="M246" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations.</p></caption>
            <?xmltex \igopts{width=236.157874pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f07.png"/>

          </fig>

      <p id="d1e5148">Therefore, for river widths greater than 100 m, a <inline-formula><mml:math id="M247" display="inline"><mml:mrow><mml:msub><mml:mi>k</mml:mi><mml:mn mathvariant="normal">600</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> equation based on O'Connor and Dobbins (1958) and Ho et al. (2016), neglecting the
term related to the wind, and providing the most accurate <inline-formula><mml:math id="M248" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>
concentrations, was selected (see Sect. S3 for more information on the selection of <inline-formula><mml:math id="M249" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> and the tests performed).</p>
      <p id="d1e5181"><?xmltex \hack{\newpage}?>Although these results can be improved, organic and inorganic carbon and
total alkalinity budgets can be calculated at the scale of a whole drainage
basin for the first time.</p>
</sec>
</sec>
<sec id="Ch1.S3.SS2">
  <label>3.2</label><title>Alkalinity, inorganic and organic carbon budgets</title>
      <p id="d1e5194">We established an average inorganic and organic budget for the period
studied (2010–2013) (Table 4). The budget of inorganic and organic carbon
(IC and OC) of the entire Seine River basin (from headwater streams to the
beginning of the estuary) showed the high contribution of external inputs
(sum of point and diffuse sources accounted for 92 % and 68 % of IC and
OC inputs, respectively) and riverine exports (68 % and 66 % of IC and
OC outputs, respectively). These exports were at least 1 order of magnitude higher for the IC budget (Table 4). The substantial contribution of the Seine aquifer water flow led the IC flux brought by groundwater to dominate over those from the subsurface (57.5 % vs. 34 % of total IC inputs, respectively), while for OC, the subsurface contributions were higher than the groundwater contributions (54 % vs. 14 % of the total OC fluxes).</p>

<?xmltex \floatpos{t}?><table-wrap id="Ch1.T4" specific-use="star"><?xmltex \currentcnt{4}?><label>Table 4</label><caption><p id="d1e5200">Budget of the Seine hydrosystem for inorganic and organic carbon
(kg C km<inline-formula><mml:math id="M250" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M251" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) and total alkalinity (TA, mol km<inline-formula><mml:math id="M252" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M253" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) as calculated by the pyNuts-Riverstrahler model averaged over the period 2010–2013. <inline-formula><mml:math id="M254" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">a</mml:mi></mml:msup></mml:math></inline-formula> TA input related to NPP refers to the net difference between TA produced by photosynthesis on <inline-formula><mml:math id="M255" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> uptake and photosynthesis on <inline-formula><mml:math id="M256" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> uptake (reducing alkalinity). <inline-formula><mml:math id="M257" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">b</mml:mi></mml:msup></mml:math></inline-formula> Net sediment loss is the difference between the erosion and the sedimentation calculated by the model.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="4">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="right"/>
     <oasis:colspec colnum="4" colname="col4" align="right"/>
     <oasis:thead>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">2010–2013</oasis:entry>
         <oasis:entry colname="col2">Processes involved in inorg. C budget</oasis:entry>
         <oasis:entry colname="col3">kg C km<inline-formula><mml:math id="M258" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M259" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">%</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">Input to rive</oasis:entry>
         <oasis:entry colname="col2">Diffuse sources from subroot</oasis:entry>
         <oasis:entry colname="col3">5963</oasis:entry>
         <oasis:entry colname="col4">34.4</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Diffuse sources from groundwater</oasis:entry>
         <oasis:entry colname="col3">9968</oasis:entry>
         <oasis:entry colname="col4">57.5</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Urban point sources</oasis:entry>
         <oasis:entry colname="col3">1135</oasis:entry>
         <oasis:entry colname="col4">6.6</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Heterotrophic respiration</oasis:entry>
         <oasis:entry colname="col3">266</oasis:entry>
         <oasis:entry colname="col4">1.5</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Denitrification</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">0.0</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Output from river</oasis:entry>
         <oasis:entry colname="col2">Delivery to the outlet</oasis:entry>
         <oasis:entry colname="col3">12 483</oasis:entry>
         <oasis:entry colname="col4">68.4</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"><inline-formula><mml:math id="M260" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions</oasis:entry>
         <oasis:entry colname="col3">5619</oasis:entry>
         <oasis:entry colname="col4">30.8</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Nitrification</oasis:entry>
         <oasis:entry colname="col3">37</oasis:entry>
         <oasis:entry colname="col4">0.2</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">NPP</oasis:entry>
         <oasis:entry colname="col3">105</oasis:entry>
         <oasis:entry colname="col4">0.6</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">2010–2013</oasis:entry>
         <oasis:entry colname="col2">Processes involved in TA budget</oasis:entry>
         <oasis:entry colname="col3">mol km<inline-formula><mml:math id="M261" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M262" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">%</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Input to river</oasis:entry>
         <oasis:entry colname="col2">Diffuse sources from subroot</oasis:entry>
         <oasis:entry colname="col3">360 983</oasis:entry>
         <oasis:entry colname="col4">34.9</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Diffuse sources from groundwater</oasis:entry>
         <oasis:entry colname="col3">604 145</oasis:entry>
         <oasis:entry colname="col4">58.4</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Urban point sources</oasis:entry>
         <oasis:entry colname="col3">66 770</oasis:entry>
         <oasis:entry colname="col4">6.4</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Heterotrophic respiration</oasis:entry>
         <oasis:entry colname="col3">2972</oasis:entry>
         <oasis:entry colname="col4">0.3</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Denitrification</oasis:entry>
         <oasis:entry colname="col3">0</oasis:entry>
         <oasis:entry colname="col4">0.0</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Output from river</oasis:entry>
         <oasis:entry colname="col2">Delivery to outlet</oasis:entry>
         <oasis:entry colname="col3">1 004 299</oasis:entry>
         <oasis:entry colname="col4">97.1</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Nitrification</oasis:entry>
         <oasis:entry colname="col3">6219</oasis:entry>
         <oasis:entry colname="col4">0.6</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">NPP<inline-formula><mml:math id="M263" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">a</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3">24 352</oasis:entry>
         <oasis:entry colname="col4">2.4</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1">2010–2013</oasis:entry>
         <oasis:entry colname="col2">Processes involved in org. C budget</oasis:entry>
         <oasis:entry colname="col3">kg C km<inline-formula><mml:math id="M264" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M265" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">%</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Input to river</oasis:entry>
         <oasis:entry colname="col2">Diffuse sources from subroot</oasis:entry>
         <oasis:entry colname="col3">870</oasis:entry>
         <oasis:entry colname="col4">53.9</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Diffuse sources from groundwater</oasis:entry>
         <oasis:entry colname="col3">227</oasis:entry>
         <oasis:entry colname="col4">14.1</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Urban point sources</oasis:entry>
         <oasis:entry colname="col3">375</oasis:entry>
         <oasis:entry colname="col4">23.2</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Nitrification</oasis:entry>
         <oasis:entry colname="col3">37</oasis:entry>
         <oasis:entry colname="col4">2.3</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">NPP</oasis:entry>
         <oasis:entry colname="col3">105</oasis:entry>
         <oasis:entry colname="col4">6.5</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">Output from river</oasis:entry>
         <oasis:entry colname="col2">Delivery to the outlet</oasis:entry>
         <oasis:entry colname="col3">1086</oasis:entry>
         <oasis:entry colname="col4">65.7</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Heterotrophic respiration</oasis:entry>
         <oasis:entry colname="col3">110</oasis:entry>
         <oasis:entry colname="col4">6.7</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Net sedimentation<inline-formula><mml:math id="M266" display="inline"><mml:msup><mml:mi/><mml:mi mathvariant="normal">b</mml:mi></mml:msup></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3">456</oasis:entry>
         <oasis:entry colname="col4">27.6</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

      <p id="d1e5812">Interestingly, the relative contributions of point sources to OC inputs were
higher than for IC (23 % and 7 % of the OC and IC inputs, respectively)
(Table 4).</p>
      <p id="d1e5816">Heterotrophic respiration by microorganisms accounted for only 1.5 % of
the IC inputs. Similarly, IC losses by net primary production also accounted
for a small proportion, i.e., 0.6 %, of the IC inputs. For the OC budget,
despite a contribution of autochthonous inputs from instream biological
metabolisms (net primary production, NPP, and nitrification: 9 % of inputs; heterotrophic
respiration: 7 %), which was relatively high compared with their proportion in IC fluxes (2.3 %), allochthonous terrestrial inputs still dominated the OC budget (Table 4).</p>
      <p id="d1e5819">The Seine River, at the outlet, exported 68 % of the IC entering or produced in the drainage network, and 66 % of the OC brought to the river
(including both particulate and dissolved forms) (Table 4). Instream OC
losses were related to heterotrophic respiration (7 %) and to a net transfer to the benthic sediment compartment, including sedimentation and
erosion processes (estimated at 28 % of losses). In the IC budget,
<inline-formula><mml:math id="M267" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions were a substantial physical process (31 % of the
overall losses) (Table 4).</p>
      <p id="d1e5833">A similar calculation was performed for the TA budget. As
for inorganic carbon, the contribution of internal processes remained
relatively low compared with the high levels of TA in lateral inputs
(diffuse sources: 93 %; point sources: 6 %) and flows exported to the basin outlet (97 %). Indeed, instream production mostly relied on
heterotrophic respiration (<inline-formula><mml:math id="M268" display="inline"><mml:mrow><mml:mo>&lt;</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula> %) while denitrification was negligible. Photosynthesis might also produce or consume alkalinity whether
<inline-formula><mml:math id="M269" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> or <inline-formula><mml:math id="M270" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">NH</mml:mi><mml:mn mathvariant="normal">4</mml:mn><mml:mo>+</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> is the preferential N source of
phytoplankton's uptake, but in our budget it resulted in our budget in a net
TA reduction (2 %), while nitrification also contributed to less than
1 % of TA output.</p><?xmltex \hack{\newpage}?>
</sec>
<?pagebreak page2390?><sec id="Ch1.S3.SS3">
  <label>3.3</label><title>Carbon aquatic processes</title>
      <p id="d1e5881">Whereas IC and OC budgets of the Seine hydrosystem were clearly dominated by
external terrestrial inputs and outputs through deliveries at the coast, an
attempt was made here to analyze instream processes involved in the IC and
OC cycles (Figs. 8 and 9).</p>

      <?xmltex \floatpos{t}?><fig id="Ch1.F8" specific-use="star"><?xmltex \currentcnt{8}?><label>Figure 8</label><caption><p id="d1e5886">Instream processes involved in the inorganic carbon cycle simulated by pyNuts-Riverstrahler and averaged over the 2010–2013 period for the Seine River network until its fluvial outlet at Poses. <bold>(a)</bold> <inline-formula><mml:math id="M271" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing (blue–yellow, g C m<inline-formula><mml:math id="M272" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M273" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), <bold>(b)</bold> net primary production (blue–green, g C m<inline-formula><mml:math id="M274" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M275" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), <bold>(c)</bold> heterotrophic planktonic (blue–violet), and <bold>(d)</bold> benthic respiration (blue–orange, g C m<inline-formula><mml:math id="M276" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M277" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) are represented in the hydrographic network.</p></caption>
          <?xmltex \igopts{width=455.244094pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f08.png"/>

        </fig>

      <?xmltex \floatpos{t}?><fig id="Ch1.F9"><?xmltex \currentcnt{9}?><label>Figure 9</label><caption><p id="d1e5993">Metabolism for small, intermediate and large stream orders (SO) (here represented by SO1, SO5 and SO7, respectively) of the Seine basin simulated by pyNuts-Riverstrahler and averaged over the 2010–2013 period: net primary production (NPP, g C m<inline-formula><mml:math id="M278" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M279" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), heterotrophic respiration (het. respiration, g C m<inline-formula><mml:math id="M280" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M281" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), net ecosystem production (NEP, g C m<inline-formula><mml:math id="M282" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M283" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>).</p></caption>
          <?xmltex \igopts{width=170.716535pt}?><graphic xlink:href="https://hess.copernicus.org/articles/24/2379/2020/hess-24-2379-2020-f09.png"/>

        </fig>

      <p id="d1e6067">The average spatial distribution of IC processes, as calculated by the model, was mapped for the 2010–2013 period (Fig. 8). Benthic activities were the greatest in smaller streams. By contrast, net primary production and heterotrophic planktonic respiration, which both followed a similar spatial pattern, increased as Strahler order increased, reaching their highest values in the lower Seine River. All these biological processes involved in the IC cycle were therefore highly active in the main stem of the river, while on the other hand <inline-formula><mml:math id="M284" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing occurred mainly in the basin's small headwater streams (Fig. 8).</p>
      <p id="d1e6081"><?xmltex \hack{\newpage}?>Regarding the OC processes, mostly linked to biological activity, they were
analyzed in terms of ecosystem metabolism (Fig. 9). The net ecosystem
production (NEP, g C m<inline-formula><mml:math id="M285" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M286" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) is defined as follow:
            <disp-formula id="Ch1.Ex1"><mml:math id="M287" display="block"><mml:mrow><mml:mi mathvariant="normal">NEP</mml:mi><mml:mo>=</mml:mo><mml:mi mathvariant="normal">NPP</mml:mi><mml:mo>-</mml:mo><mml:mi mathvariant="normal">het</mml:mi><mml:mo>.</mml:mo><mml:mspace linebreak="nobreak" width="0.25em"/><mml:mi mathvariant="normal">respiration</mml:mi><mml:mo>,</mml:mo></mml:mrow></mml:math></disp-formula>
          where NPP is the net primary production (g C m<inline-formula><mml:math id="M288" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M289" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>) depending
on the growth of phytoplankton. NPP contributes to building phytoplankton
biomass that constitutes a stock of organic carbon, emitted in turn as
<inline-formula><mml:math id="M290" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> by respiration (het. respiration, g C m<inline-formula><mml:math id="M291" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M292" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>).</p>
      <p id="d1e6192">Simulations showed that NEP would remain negative in the entire drainage
network (Fig. 9). However, NEP must be analyzed with caution since the
phytoplankton pattern was not adequately represented (see Fig. 6). In SO1,
this negative NEP was associated with almost no NPP, and heterotrophic
respiration was dominated by benthic activities (see Fig. 8). In SO5, NEP was less negative than in SO1 (Fig. 9), and heterotrophic respiration was lower than in SO1 while NPP<?pagebreak page2391?> was higher. In the lower Seine River (SO7), NPP increased as did heterotrophic respiration, which reached its highest value
in this downstream stretch receiving treated effluents from WWTPs. Therefore, the increase in NPP did not result in positive NEP. The entire drainage network was thus supersaturated in <inline-formula><mml:math id="M293" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> with respect to atmospheric concentrations and constituted a source of <inline-formula><mml:math id="M294" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>. This supersaturation was the highest in smaller orders, lower in intermediate orders and increased again in the lower Seine River (Fig. 4, see also Fig. 8).</p>
</sec>
</sec>
<sec id="Ch1.S4">
  <label>4</label><title>Discussion</title>
<sec id="Ch1.S4.SS1">
  <label>4.1</label><title>Evaluation of the model</title>
      <?pagebreak page2392?><p id="d1e6233">Simulated <inline-formula><mml:math id="M295" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations tend to be higher than observed ones for SO1. These differences may be related to the high variability of <inline-formula><mml:math id="M296" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> in SO1, and the scarcity of measurements in spring. However,
Öquist et al. (2009) estimated that up to 90% of daily soil DIC import into streams was emitted to the atmosphere within 200 m. Such a <inline-formula><mml:math id="M297" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emission pattern can be applied to the Seine, as a similar result was found for <inline-formula><mml:math id="M298" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula> (Garnier et al., 2009). Since soil emissions were very difficult to capture, we considered that concentrations
in groundwater (DIC and TA) closely reflect the composition of diffuse
sources, much like soil composition. This assumption probably underestimates
the <inline-formula><mml:math id="M299" display="inline"><mml:mrow class="chem"><mml:mi mathvariant="normal">DIC</mml:mi><mml:mo>/</mml:mo><mml:mi mathvariant="normal">TA</mml:mi></mml:mrow></mml:math></inline-formula> ratio brought to the river in lower-order streams. Differently from SO1, simulated concentrations in SO2–7 are lower than the observed values (Fig. 4). Overall, the NRMSE indicating a percentage of variation was less than 20 %, except for TA (25 %).</p>
      <p id="d1e6294">Regarding gas transfer velocity values, an equation for large rivers with no
tidal influence using wind speed could be more appropriate (Alin et al., 2011) and could decrease NRMSE in these downstream sections of the river. However, the Riverstrahler model does not consider wind as an input variable, which would have required the model to have a much higher spatiotemporal resolution to reflect its spatiotemporal heterogeneity in the Seine basin, with for example the diurnal cycle affected by phenomena such as breezes
(Quintana-Seguí et al., 2008).</p>
      <p id="d1e6297">Future work with direct <inline-formula><mml:math id="M300" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> measurements and/or a new representation of
<inline-formula><mml:math id="M301" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> values in the model could help improve outgassing simulations with
pyNuts-Riverstrahler. A test of different <inline-formula><mml:math id="M302" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> formulations on high stream
orders (width <inline-formula><mml:math id="M303" display="inline"><mml:mo>&gt;</mml:mo></mml:math></inline-formula> 100 m) representing only 1.5 % of the length of
the river system showed an increase in the total <inline-formula><mml:math id="M304" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing
estimates by up to 6.2 %. Our model is <inline-formula><mml:math id="M305" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> sensitive and our estimates
differ from the results of Lauerwald et al. (2017), who observed that a large variation in <inline-formula><mml:math id="M306" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> does not lead to a significant change in simulated aquatic <inline-formula><mml:math id="M307" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions. For the Seine River here, we indeed used a more accurate <inline-formula><mml:math id="M308" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> value calculated at each time step (10 d) and at every kilometer of the river network (according to water temperature, velocity and depth). In addition, a huge organic carbon load is brought by WWTPs in this Seine urbanized hydrosystem that disrupts carbon dynamics (e.g., WWTPs treating 12 million inhabitant equivalents in the Parisian conurbation) in the downstream part of the Seine River, in contrast to simulations on a natural network (Lauerwald et al., 2017).</p>
      <p id="d1e6372">Regarding seasonal patterns, DIC and alkalinity amplitudes were suitably
captured and the level of the values was correct. DIC and TA observations
showed a strong decrease from June–July to November (maximum amplitude
decrease, 10 mg C L<inline-formula><mml:math id="M309" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> and 1000 <inline-formula><mml:math id="M310" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>mol L<inline-formula><mml:math id="M311" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), as illustrated by the model. For the Seine River, the water flow decrease in summer was mainly related to the decrease in runoff water, meaning that the groundwater contribution was comparatively higher at this time. According to our measurements, these groundwaters were more concentrated in TA, DIC and
<inline-formula><mml:math id="M312" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> than runoff water. However, water released by upstream reservoirs (supporting low flow in the downstream section of the Seine network) accounts for a significant proportion of the river discharge during summer and was characterized by lower TA, DIC and <inline-formula><mml:math id="M313" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations. Then the decrease observed was related to the contribution of reservoirs. These results strongly encourage the implementation of an inorganic carbon module in the modeling of reservoirs, already coupled with Riverstrahler for nutrients and organic carbon (Garnier et al., 1999).</p>
      <p id="d1e6430"><?xmltex \hack{\newpage}?>The model showed a weak performance in representing <inline-formula><mml:math id="M314" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> seasonality. Referring to a previous study (Marescaux et al., 2018b), <inline-formula><mml:math id="M315" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> seasonality in the Seine River resulted from a combination of water temperature and hydrology leading to an increase in <inline-formula><mml:math id="M316" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and <inline-formula><mml:math id="M317" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> evasion fluxes from winter to summer–autumn. The pyNuts-Riverstrahler model, however, has an accurate representation of these constraints and would not account for these discrepancies. Also, despite the fact that the biomass level of phytoplankton was consistent with the observations, the seasonal pattern was not satisfactorily reproduced by the model. However, it is worth mentioning that phytoplankton parameters in RIVE were determined through laboratory experiments at a time when the amplitude of algal blooms was much higher than at present (up to 4.5–6 mg C L<inline-formula><mml:math id="M318" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, i.e., chlorophyll <inline-formula><mml:math id="M319" display="inline"><mml:mi>a</mml:mi></mml:math></inline-formula> reaching
150 <inline-formula><mml:math id="M320" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">µ</mml:mi></mml:mrow></mml:math></inline-formula>g Chl <inline-formula><mml:math id="M321" display="inline"><mml:mi>a</mml:mi></mml:math></inline-formula> L<inline-formula><mml:math id="M322" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; Garnier et al., 1995). Indeed, the
implementation of the European Water Framework Directive in the 2000s with
enhancement of treatments in WWTPs greatly improved water quality (Romero et al., 2016). New laboratory experiments for possibly taking into account additional phytoplankton groups or species in these new trophic conditions and/or mixing of stochastic and mechanistic modeling are required to better represent phytoplankton temporal dynamics in the model. In addition, the observed incident light, instead of the empirical relationship used, would improve the early winter bloom, newly occurring in a changing environment.</p>
</sec>
<sec id="Ch1.S4.SS2">
  <label>4.2</label><title>Export fluxes</title>
      <p id="d1e6537">The new implementation of an inorganic carbon module in the
pyNuts-Riverstrahler model allows us to estimate <inline-formula><mml:math id="M323" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing of the Seine River at <inline-formula><mml:math id="M324" display="inline"><mml:mrow><mml:mn mathvariant="normal">364</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">99</mml:mn></mml:mrow></mml:math></inline-formula> Gg C yr<inline-formula><mml:math id="M325" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> (1.4 Gg C km<inline-formula><mml:math id="M326" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M327" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> taking into account a river surface area of 260 km<inline-formula><mml:math id="M328" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>). This is significantly lower than our previous estimate of 590 Gg C yr<inline-formula><mml:math id="M329" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> (2.2 Gg C km<inline-formula><mml:math id="M330" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M331" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> from a river surface area of 265 km<inline-formula><mml:math id="M332" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>) using <inline-formula><mml:math id="M333" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> measurements only (Marescaux et al., 2018a). This difference is explained by various factors. Marescaux et al. (2018a) used <inline-formula><mml:math id="M334" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> formulates according to Raymond et al. (2012, Eq. 5 in Table 2) all along the Seine drainage network and, consequently, the value of <inline-formula><mml:math id="M335" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions was most likely overestimated (see Sect. 4.1). We also acknowledged that the <inline-formula><mml:math id="M336" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing estimate yielded by simulations might slightly underestimate emissions overall with respect to Fig. 4, which showed that our simulated <inline-formula><mml:math id="M337" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations were
overestimated for SO1 but underestimated for SO2 to SO7. In the model, a better spatiotemporal resolution and more accurate descriptions of the water temperature,
the water velocity and the <inline-formula><mml:math id="M338" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> value adopted
here, along with different <inline-formula><mml:math id="M339" display="inline"><mml:mi>k</mml:mi></mml:math></inline-formula> values for low and high stream orders, would be
associated with less outgassing than in our previous study. For these reasons, we believe that our estimate of <inline-formula><mml:math id="M340" display="inline"><mml:mrow><mml:mn mathvariant="normal">364</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">99</mml:mn></mml:mrow></mml:math></inline-formula> Gg C yr<inline-formula><mml:math id="M341" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, using our process based model, is a more accurate value of <inline-formula><mml:math id="M342" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions from the Seine River.</p>
      <?pagebreak page2393?><p id="d1e6756"><?xmltex \hack{\newpage}?>The outgassing found for the Seine River by the surface area of the river of <inline-formula><mml:math id="M343" display="inline"><mml:mrow><mml:mn mathvariant="normal">1400</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">381</mml:mn></mml:mrow></mml:math></inline-formula> g C m<inline-formula><mml:math id="M344" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M345" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> is in the middle range of the average
estimates of outgassing from temperate rivers (70–2370 g C m<inline-formula><mml:math id="M346" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M347" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>), including the St. Lawrence River (Yang et al., 1996), Ottawa River (Telmer and Veizer, 1999), Hudson River (Raymond et al., 1997), US temperate rivers (Butman and Raymond, 2011) and Mississippi River (Dubois et al., 2010). This high variability for these temperate rivers is strongly dependent on whether or not the first-order streams were considered in the outgassing. Similar to our study, Butman and Raymond (2011) took into account lower-order streams and rivers while lower estimates correspond to studies investigating large rivers, excluding lower-order streams. Indeed, outgassing are often greater in headwater streams than in large rivers owing to higher <inline-formula><mml:math id="M348" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations and headwater streams have higher gas transfer velocities (Marx et al., 2017; Raymond et al., 2012). The mapping of <inline-formula><mml:math id="M349" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing in the Seine basin clearly showed these spatial trends, with smaller streams releasing more <inline-formula><mml:math id="M350" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> than median and larger rivers (see Fig. 8). Indeed, first-order streams of the Seine River represent 9.6 % of the Seine surface area and contributed to 40 % of the total <inline-formula><mml:math id="M351" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions by the river network.</p>
      <p id="d1e6865">Regarding organic carbon, Meybeck (1993) estimated the DOC export to the ocean for a temperate climate at 1.5 g C m<inline-formula><mml:math id="M352" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M353" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, a value that is higher than our OC estimate of 1.1 g C m<inline-formula><mml:math id="M354" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> yr<inline-formula><mml:math id="M355" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> for the Seine River basin, before entering the estuarine section. Compared with other temperate rivers, the rivers of the northern France, and specifically the Seine River here, are rather flat, their low altitude limiting erosion (Guerrini et al., 1998). In addition, since the implementation of the European Water Framework Directive in the 2000s, decreasing nutrients and carbon in wastewater effluents discharged into the rivers (Rocher and Azimi, 2017), together with a decrease in phytoplankton biomass development (Aissa-Grouz et al., 2018; Romero et al., 2016), can explain this difference in DOC fluxes for the Seine, a change probably valid for many other western European rivers (Romero et al., 2013). Furthermore, the <inline-formula><mml:math id="M356" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mo>/</mml:mo><mml:mi mathvariant="normal">OC</mml:mi></mml:mrow></mml:math></inline-formula> ratio of the export to the estuary of the Seine hydrosystem is 5.2, which is higher than this ratio for the Mississippi River, for example (4.1; Dubois et al., 2010; Li et al., 2013), and may be related to considerable outgassing from headwater streams taken into account in our study. Note, however, that the small Seine River basin exports only <inline-formula><mml:math id="M357" display="inline"><mml:mrow><mml:mn mathvariant="normal">70</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">99</mml:mn></mml:mrow></mml:math></inline-formula> Gg C yr<inline-formula><mml:math id="M358" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> OC compared with the large Mississippi River with exports amounting to 2435 Gg C yr<inline-formula><mml:math id="M359" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> OC (Dubois et al., 2010), and with a surface area
more than 40 times greater than the Seine. Interestingly, the Seine River
export was estimated at three times less than the export calculated in 1979
(250 Gg C yr<inline-formula><mml:math id="M360" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; Kempe, 1984). This difference in DOC concentrations in the Seine River would be 2.8 times lower than in the 1990s (Rocher and Azimi, 2017).</p>
      <p id="d1e6980">We estimated the DIC export of the Seine River at <inline-formula><mml:math id="M361" display="inline"><mml:mrow><mml:mn mathvariant="normal">820</mml:mn><mml:mo>±</mml:mo><mml:mn mathvariant="normal">220</mml:mn></mml:mrow></mml:math></inline-formula>Gg C yr<inline-formula><mml:math id="M362" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>, a value higher than basins of the same size or even larger (e.g., the Ottawa River, with a drainage area of 149 000 km<inline-formula><mml:math id="M363" display="inline"><mml:msup><mml:mi/><mml:mn mathvariant="normal">2</mml:mn></mml:msup></mml:math></inline-formula>, showed a DIC export at 520 Gg C yr<inline-formula><mml:math id="M364" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>; Telmer and Veizer, 1999; Li et al., 2013). The high concentrations of <inline-formula><mml:math id="M365" display="inline"><mml:mrow class="chem"><mml:msubsup><mml:mi mathvariant="normal">HCO</mml:mi><mml:mn mathvariant="normal">3</mml:mn><mml:mo>-</mml:mo></mml:msubsup></mml:mrow></mml:math></inline-formula> in the Seine basin already documented and related to the lithology of the Seine basin (limestone and gypsum beds from Cretaceous and Tertiary) (Kempe, 1982; 1984) may
explain this high export to the river outlet. With both high <inline-formula><mml:math id="M366" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and DIC exports, the ratio of <inline-formula><mml:math id="M367" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mo>/</mml:mo><mml:mi mathvariant="normal">DIC</mml:mi></mml:mrow></mml:math></inline-formula> exports from the Seine River is the same as the overall ratio here (0.5; Li et al., 2013).</p>
</sec>
<sec id="Ch1.S4.SS3">
  <label>4.3</label><title>Metabolism</title>
      <p id="d1e7076">Model simulations with the new inorganic carbon module can be used to
analyze spatial variations of <inline-formula><mml:math id="M368" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> in regard to instream metabolism
activities. We observe that the influence of the metabolism activities on
the <inline-formula><mml:math id="M369" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing is low. Indeed, in the carbonated Seine River, the IC originating from groundwater supports the <inline-formula><mml:math id="M370" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing along the network (Fig. 8). Nevertheless, instream metabolism activities produce or consume <inline-formula><mml:math id="M371" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>.</p>
      <p id="d1e7123">The model highlights the importance of benthic activities in headwater streams (Fig. 8) that decreased downstream as heterotrophic planktonic activities increased in larger rivers, a typical pattern described by the
river continuum concept (RCC; Vannote et al., 1980) and quantified for the Seine River (Billen et al., 1994; Garnier et al., 1995; Garnier and Billen, 2007). These results are also in agreement with those reported by Hotchkiss et al. (2015), who suggested that the percentage of <inline-formula><mml:math id="M372" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions from metabolism increases with stream size while <inline-formula><mml:math id="M373" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions of lower-order streams are related to allochthonous terrestrial <inline-formula><mml:math id="M374" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>. Regarding headwater streams, Battin et al. (2009b) described benthic activities as the highest (as also observed in our study; Fig. 8) where
microbial biomass is associated with streambeds characterized by exchanges
with subsurface flow bringing nutrients and oxygen and increasing
mineralization.</p>
      <p id="d1e7159">Mean NEP would remain negative in the entire basin, resulting from
heterotrophic conditions producing <inline-formula><mml:math id="M375" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> (Figs. 8 and 9). However, even though the level of phytoplankton biomass was correctly simulated, the summer downstream bloom, which was not reproduced by the model, could lead to some NPP underestimation. As expected, NPP in lower-order streams was lower than in higher SOs owing to shorter water residence times. Benthic respiration of lower-order streams was significant (Fig. 8) and made NEP highly negative. Also, small SOs were the most concentrated in <inline-formula><mml:math id="M376" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> owing to the groundwater contribution. Intermediate stream orders showed the smallest <inline-formula><mml:math id="M377" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> or heterotrophic respirations with NEP less than <inline-formula><mml:math id="M378" display="inline"><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">0.1</mml:mn></mml:mrow></mml:math></inline-formula> g C m<inline-formula><mml:math id="M379" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M380" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula>. This can be explained by an increase in
NPP due to a lower dilution rate than the phytoplankton growth rate (Garnier
et al., 1995), and to a reduced ratio of the bottom sediment-to-water column
volume, decreasing heterotrophic respiration. In higher-order streams both
NPP and heterotrophic respiration were the highest;<?pagebreak page2394?> however, they led to
negative NEP lower than SO1 (Figs. 8 and 9). Despite photosynthesis reducing the <inline-formula><mml:math id="M381" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations (Fig. 6), the highest SOs were affected by wastewater effluents, resulting in an overall negative NEP.</p>
      <p id="d1e7241">During the recent 2010–2013 period studied herein, and in all SOs, the NPP
never exceeded heterotrophic respiration (ratio of NPP to het. resp less than 1 or <inline-formula><mml:math id="M382" display="inline"><mml:mrow><mml:mrow class="chem"><mml:mi mathvariant="normal">P</mml:mi><mml:mo>:</mml:mo><mml:mi mathvariant="normal">R</mml:mi></mml:mrow><mml:mo>&lt;</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:math></inline-formula>) (Fig. 9). Whereas in the past the eutrophication of the Seine
River led to a <inline-formula><mml:math id="M383" display="inline"><mml:mrow class="chem"><mml:mi mathvariant="normal">P</mml:mi><mml:mo>:</mml:mo><mml:mi mathvariant="normal">R</mml:mi></mml:mrow></mml:math></inline-formula> ratio greater than 1 in large rivers, at least during spring blooms, with P and R values increasing up to 2.5 g C m<inline-formula><mml:math id="M384" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">2</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> d<inline-formula><mml:math id="M385" display="inline"><mml:msup><mml:mi/><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:math></inline-formula> (Garnier and Billen, 2007), the <inline-formula><mml:math id="M386" display="inline"><mml:mrow class="chem"><mml:mi mathvariant="normal">P</mml:mi><mml:mo>:</mml:mo><mml:mi mathvariant="normal">R</mml:mi></mml:mrow></mml:math></inline-formula> ratio is now systematically less than 1. These changes, linked to an overall decrease in biological metabolism, are explained by improvements of treatments in WWTPs decreasing the organic carbon load discharged into rivers and the associated pollution, and hence decreasing the <inline-formula><mml:math id="M387" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentration along the main stem of the Seine River (Marescaux et al., 2018b). Besides DOC, improvements in wastewater treatments also reduced nutrient inputs to the river, especially phosphates, today a limiting nutrient to algal development in SO5 and 6, reducing algal peaks by a factor of 3.</p>
</sec>
</sec>
<sec id="Ch1.S5" sec-type="conclusions">
  <label>5</label><title>Conclusion</title>
      <p id="d1e7331">The pyNuts-Riverstrahler model of biogeochemical river functioning now
includes the processes involved in the inorganic carbon cycle in order to
represent the spatial dynamics and seasonal variations of <inline-formula><mml:math id="M388" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula>
concentrations and outgassing along the Seine hydrosystem. The sensitivity
of simulations to different gas transfer velocity values highlighted the
need for additional refinement for the Seine River so as to choose the best
model equation. In addition, revisiting the phytoplankton description in the
model could facilitate a better simulation of the temporal dynamics of
phytoplankton. Further, an explicit representation of the anaerobic reduction chain of the benthos could enable us to specify the benthic impact on TA and DIC in a greater variety of ecosystems.</p>
      <p id="d1e7345"><inline-formula><mml:math id="M389" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations appear to be controlled differently along the Seine hydrosystem. In small orders, concentrations were mainly driven by diffuse sources. In larger rivers, in addition to the influence of groundwater and low-flow support by upstream reservoirs, concentrations showed patterns linked to hydrosystem metabolisms. Indeed, blooms tended to decrease <inline-formula><mml:math id="M390" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations, although the hydrosystem remained heterotrophic and supersaturated with respect to the atmospheric <inline-formula><mml:math id="M391" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations. Heterotrophic respiration increased <inline-formula><mml:math id="M392" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> concentrations with peaks downstream of WWTP effluents enriched in organic carbon.</p>
      <p id="d1e7391">Our Riverstrahler modeling has shown that there are many factors that control <inline-formula><mml:math id="M393" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions in basins affected by human activity along an aquatic continuum. Once validated by field measurements, which are still too scarce, this generic modeling approach can be applied to any drainage system to better quantify lateral <inline-formula><mml:math id="M394" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emission on a continental scale.</p><?xmltex \hack{\newpage}?>
</sec>

      
      </body>
    <back><notes notes-type="dataavailability"><title>Data availability</title>

      <p id="d1e7421">The datasets generated during the current study are available from the corresponding author on reasonable request.</p>
  </notes><app-group>
        <supplementary-material position="anchor"><p id="d1e7424">The supplement related to this article is available online at: <inline-supplementary-material xlink:href="https://doi.org/10.5194/hess-24-2379-2020-supplement" xlink:title="pdf">https://doi.org/10.5194/hess-24-2379-2020-supplement</inline-supplementary-material>.</p></supplementary-material>
        </app-group><notes notes-type="authorcontribution"><title>Author contributions</title>

      <p id="d1e7433">All the authors contributed to the design of the study. JG and VT are co-supervisors of the PhD. AM participated as a PhD student in the field campaigns, lab chemical analyses and implementation of the new inorganic carbon module. NG and MS provided technical and scientific support for the modeling. AM wrote the first draft of the manuscript, and all the
co-authors helped to interpret the data and write the article.</p>
  </notes><notes notes-type="competinginterests"><title>Competing interests</title>

      <p id="d1e7439">The authors declare that they have no conflict of interest.</p>
  </notes><ack><title>Acknowledgements</title><p id="d1e7445">The project leading to this paper received funding from the European
Union's Horizon 2020 research and innovation program under the Marie
Sklodowska-Curie grant agreement no. 643052. A PhD grant was attributed to
Audrey Marescaux. Many thanks are due to Sébastien Bosc, Anunciacion Martinez Serrano and Benjamin Mercier for their kind participation in the fieldwork and for their assistance with chemical analyses in the lab. We thank Emmanuel Soyeux (Veolia Water, France), Muriel Chagniot (Veolia Water, France), and the operators of the Veolia WWTPs for their precious help in organizing the field campaigns. The SIAAP (Vincent Rocher) is also sincerely acknowledged for their contribution to sampling the largest WWTP of the Paris conurbation and the long-term view on treatments in the SIAAP WWTPs provided by their recent book (Rocher and Azimi, 2017). Vincent Thieu (assistant professor at Sorbonne University, Paris) and Josette Garnier (Research Director at the Centre National de la Recherche Scientifique, France) are co-supervisors of the PhD. Nathalie Gypens is Professor at the Université Libre de Bruxelles (Belgium). Marie Silvestre is GIS Engineer at the Centre National de la Recherche Scientifique (France).</p></ack><notes notes-type="financialsupport"><title>Financial support</title>

      <p id="d1e7450">This research has been supported by the Marie Sklodowska-Curie grant (grant no. 643052).</p>
  </notes><notes notes-type="reviewstatement"><title>Review statement</title>

      <p id="d1e7456">This paper was edited by Anas Ghadouani and reviewed by three anonymous referees.</p>
  </notes><ref-list>
    <title>References</title>

      <?pagebreak page2395?><ref id="bib1.bib1"><label>1</label><?label 1?><mixed-citation>Abril, G., Bouillon, S., Darchambeau, F., Teodoru, C. R., Marwick, T. R.,
Tamooh, F., Ochieng Omengo, F., Geeraert, N., Deirmendjian, L., Polsenaere,
P., and Borges, A. V.: Technical Note: Large overestimation of <inline-formula><mml:math id="M395" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> calculated from pH and alkalinity in acidic, organic-rich freshwaters, Biogeosciences, 12, 67–78, <ext-link xlink:href="https://doi.org/10.5194/bg-12-67-2015" ext-link-type="DOI">10.5194/bg-12-67-2015</ext-link>, 2015.</mixed-citation></ref>
      <ref id="bib1.bib2"><label>2</label><?label 1?><mixed-citation>Aissa-Grouz, N., Garnier, J., and Billen, G.: Long trend reduction of phosphorus wastewater loading in the Seine: determination of phosphorus
speciation and sorption for modeling algal growth, Environ. Sci. Pollut.
Res., 25, 23515–23528, <ext-link xlink:href="https://doi.org/10.1007/s11356-016-7555-7" ext-link-type="DOI">10.1007/s11356-016-7555-7</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib3"><label>3</label><?label 1?><mixed-citation>Aksoy, E., Yigini, Y., and Montanarella, L.: Combining soil databases for topsoil organic carbon mapping in Europe, PLoS One, 11, 1–17,
<ext-link xlink:href="https://doi.org/10.1371/journal.pone.0152098" ext-link-type="DOI">10.1371/journal.pone.0152098</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib4"><label>4</label><?label 1?><mixed-citation>Albinet, M. : Piézométrie moyennes eaux de 1967: Carte hydrogéologique du bassin de Paris au <inline-formula><mml:math id="M396" display="inline"><mml:mrow><mml:mn mathvariant="normal">1</mml:mn><mml:mo>/</mml:mo><mml:mn mathvariant="normal">500</mml:mn><mml:mspace width="0.125em" linebreak="nobreak"/><mml:mn mathvariant="normal">000</mml:mn></mml:mrow></mml:math></inline-formula>, Editions BRGM, Paris, 1967.</mixed-citation></ref>
      <ref id="bib1.bib5"><label>5</label><?label 1?><mixed-citation>Alin, S. R., Rasera, M. M. D. F. F. L., Salimon, C. I., Richey, J. E.,
Holtgrieve, G. W., Krusche, A. V., and Snidvongs, A.: Physical controls on
carbon dioxide transfer velocity and flux in low-gradient river systems and
implications for regional carbon budgets, J. Geophys. Res., 116, G01009,
<ext-link xlink:href="https://doi.org/10.1029/2010jg001398" ext-link-type="DOI">10.1029/2010jg001398</ext-link>, 2011.</mixed-citation></ref>
      <ref id="bib1.bib6"><label>6</label><?label 1?><mixed-citation>Alshboul, Z., Encinas-Fernández, J., Hofmann, H., Lorke, A.,
Encinas-Ferna, J., Hofmann, H., Lorke, A., Encinas-Fernández, J.,
Hofmann, H., and Lorke, A.: Export of dissolved methane and carbon dioxide
with effluents from municipal wastewater treatment plants, Environ. Sci.
Technol., 50, 5555–5563, <ext-link xlink:href="https://doi.org/10.1021/acs.est.5b04923" ext-link-type="DOI">10.1021/acs.est.5b04923</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib7"><label>7</label><?label 1?><mixed-citation>Arnold, J. G. and Allen, P. M.: Automated methods for estimating baseflow and ground water recharge from streamflow records, J. Am. Water Resour. Assoc., 35, 411–424, <ext-link xlink:href="https://doi.org/10.1111/j.1752-1688.1999.tb03599.x" ext-link-type="DOI">10.1111/j.1752-1688.1999.tb03599.x</ext-link>, 1999.</mixed-citation></ref>
      <ref id="bib1.bib8"><label>8</label><?label 1?><mixed-citation>Aufdenkampe, A. K., Mayorga, E., Raymond, P. A., Melack, J. M., Doney, S. C., Alin, S. R., Aalto, R. E., and Yoo, K.: Riverine coupling of biogeochemical cycles between land, oceans, and atmosphere, Front. Ecol. Environ., 9, 53–60, <ext-link xlink:href="https://doi.org/10.1890/100014" ext-link-type="DOI">10.1890/100014</ext-link>, 2011.</mixed-citation></ref>
      <ref id="bib1.bib9"><label>9</label><?label 1?><mixed-citation>Aumont, O., Ethé, C., Tagliabue, A., Bopp, L., and Gehlen, M.: PISCES-v2:
An ocean biogeochemical model for carbon and ecosystem studies, Geosci. Model Dev., 8, 2465–2513, <ext-link xlink:href="https://doi.org/10.5194/gmd-8-2465-2015" ext-link-type="DOI">10.5194/gmd-8-2465-2015</ext-link>, 2015.</mixed-citation></ref>
      <ref id="bib1.bib10"><label>10</label><?label 1?><mixed-citation>Battin, T. J., Kaplan, L. a., Findlay, S., Hopkinson, C. S., Marti, E., Packman, A. I., Newbold, J. D., and Sabater, F.: Biophysical controls on
organic carbon fluxes in fluvial networks, Nat. Geosci., 2, 595–595,
<ext-link xlink:href="https://doi.org/10.1038/ngeo602" ext-link-type="DOI">10.1038/ngeo602</ext-link>, 2009a.</mixed-citation></ref>
      <ref id="bib1.bib11"><label>11</label><?label 1?><mixed-citation>Battin, T. J., Luyssaert, S., Kaplan, L. a., Aufdenkampe, A. K., Richter, A.,
and Tranvik, L. J.: The boundless carbon cycle, Nat. Geosci., 2, 598–600, <ext-link xlink:href="https://doi.org/10.1038/ngeo618" ext-link-type="DOI">10.1038/ngeo618</ext-link>, 2009b.</mixed-citation></ref>
      <ref id="bib1.bib12"><label>12</label><?label 1?><mixed-citation>Billen, G. and Garnier, J.: Nitrogen transfers through the Seine drainage
network: a budget based on the application of the `Riverstrahler' model,
Hydrobiologia, 410, 139–150, <ext-link xlink:href="https://doi.org/10.1023/A:1003838116725" ext-link-type="DOI">10.1023/A:1003838116725</ext-link>, 1999.</mixed-citation></ref>
      <ref id="bib1.bib13"><label>13</label><?label 1?><mixed-citation>
Billen, G. and Servais, P.: Modélisation des processus de dégradation bactérienne de la matière organique en milieu aquatique, in: Micro-organismes dans les écosystèmes océaniques, edited by: Bianchi, M., Marty, D., Bertrand, J. C., Caumette, P., and Gauthier, M., Masson, Paris, 219–245, 1989.</mixed-citation></ref>
      <ref id="bib1.bib14"><label>14</label><?label 1?><mixed-citation>Billen, G., Garnier, J., and Hanset, P.: Modelling phytoplankton development
in whole drainage networks: the RIVERSTRAHLER Model applied to the Seine river system, Hydrobiologia, 289, 119–137, <ext-link xlink:href="https://doi.org/10.1007/BF00007414" ext-link-type="DOI">10.1007/BF00007414</ext-link>, 1994.</mixed-citation></ref>
      <ref id="bib1.bib15"><label>15</label><?label 1?><mixed-citation>
Billen, G., Garnier, J., Ficht, A., and Cun, C.: Modeling the Response of Water Quality in the Seine River Estuary to Human Activity in its Watershed Over the Last 50 Years, Estuaries, 24, 977–993, 2001.</mixed-citation></ref>
      <ref id="bib1.bib16"><label>16</label><?label 1?><mixed-citation>Billen, G., Garnier, J., Némery, J., Sebilo, M., Sferratore, a, Barles,
S., Benoit, P., and Benoît, M.: A long-term view of nutrient transfers
through the Seine river continuum, Sci. Total Environ., 375, 80–97,
<ext-link xlink:href="https://doi.org/10.1016/j.scitotenv.2006.12.005" ext-link-type="DOI">10.1016/j.scitotenv.2006.12.005</ext-link>, 2007.</mixed-citation></ref>
      <ref id="bib1.bib17"><label>17</label><?label 1?><mixed-citation>Billen, G., Ramarson, A., Thieu, V., Théry, S., Silvestre, M., Pasquier,
C., Hénault, C., and Garnier, J.: Nitrate retention at the river–watershed interface: a new conceptual modeling approach, Biogeochemistry, 139, 31–51, <ext-link xlink:href="https://doi.org/10.1007/s10533-018-0455-9" ext-link-type="DOI">10.1007/s10533-018-0455-9</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib18"><label>18</label><?label 1?><mixed-citation>Borges, A. V., Schiettecatte, L. S., Abril, G., Delille, B., and Gazeau, F.:
Carbon dioxide in European coastal waters, Estuar. Coast. Shelf Sci., 70,
375–387, <ext-link xlink:href="https://doi.org/10.1016/j.ecss.2006.05.046" ext-link-type="DOI">10.1016/j.ecss.2006.05.046</ext-link>, 2006.</mixed-citation></ref>
      <ref id="bib1.bib19"><label>19</label><?label 1?><mixed-citation>Borrelli, P., Van Oost, K., Meusburger, K., Alewell, C., Lugato, E., and
Panagos, P.: A step towards a holistic assessment of soil degradation in
Europe: Coupling on-site erosion with sediment transfer and carbon fluxes,
Environ. Res., 161, 291–298, <ext-link xlink:href="https://doi.org/10.1016/j.envres.2017.11.009" ext-link-type="DOI">10.1016/j.envres.2017.11.009</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib20"><label>20</label><?label 1?><mixed-citation>Butman, D. and Raymond, P. A.: Significant efflux of carbon dioxide from streams and rivers in the United States, Nat. Geosci., 4, 839–842,
<ext-link xlink:href="https://doi.org/10.1038/ngeo1294" ext-link-type="DOI">10.1038/ngeo1294</ext-link>, 2011.</mixed-citation></ref>
      <ref id="bib1.bib21"><label>21</label><?label 1?><mixed-citation>Cai, W.-J. and Wang, Y.: The chemistry, fluxes, and sources of carbon dioxide in the estuarine waters of the Satilla and Altamaha Rivers, Georgia, Limnol. Oceanogr., 43, 657–668, <ext-link xlink:href="https://doi.org/10.4319/lo.1998.43.4.0657" ext-link-type="DOI">10.4319/lo.1998.43.4.0657</ext-link>, 1998.</mixed-citation></ref>
      <ref id="bib1.bib22"><label>22</label><?label 1?><mixed-citation>Cole, J. J., Prairie, Y. T., Caraco, N. F., McDowell, W. H., Tranvik, L. J.,
Striegl, R. G., Duarte, C. M., Kortelainen, P., Downing, J. A., Middelburg, J. J., and Melack, J.: Plumbing the Global Carbon Cycle: Integrating Inland
Waters into the Terrestrial Carbon Budget, Ecosystems, 10, 172–185,
<ext-link xlink:href="https://doi.org/10.1007/s10021-006-9013-8" ext-link-type="DOI">10.1007/s10021-006-9013-8</ext-link>, 2007.</mixed-citation></ref>
      <ref id="bib1.bib23"><label>23</label><?label 1?><mixed-citation>Culberson, C. H.: Calculation of the in situ pH of seawater, Limnol. Oceanogr., 25, 150–152, <ext-link xlink:href="https://doi.org/10.4319/lo.1980.25.1.0150" ext-link-type="DOI">10.4319/lo.1980.25.1.0150</ext-link>, 1980.</mixed-citation></ref>
      <ref id="bib1.bib24"><label>24</label><?label 1?><mixed-citation>Desmit, X., Thieu, V., Billen, G., Campuzano, F., Dulière, V., Garnier,
J., Lassaletta, L., Ménesguen, A., Neves, R., Pinto, L., Silvestre, M.,
Sobrinho, J. L., and Lacroix, G.: Reducing marine eutrophication may require a paradigmatic change, Sci. Total Environ., 635, 1444–1466,
<ext-link xlink:href="https://doi.org/10.1016/j.scitotenv.2018.04.181" ext-link-type="DOI">10.1016/j.scitotenv.2018.04.181</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib25"><label>25</label><?label 1?><mixed-citation>Doney, S. C., Lindsay, K., Caldeira, K., Campin, J. M., Drange, H., Dutay, J. C., Follows, M., Gao, Y., Gnanadesikan, A., Gruber, N., Ishida, A., Joos, F., Madec, G., Maier-Reimer, E., Marshall, J. C., Matear, R. J., Monfray, P., Mouchet, A., Najjar, R., Orr, J. C., Plattner, G. K., Sarmiento, J., Schlitzer, R., Slater, R., Totterdell, I. J., Weirig, M. F., Yamanaka, Y., and Yool, A.: Evaluating global ocean carbon models: The importance of
realistic physics, Global Biogeochem. Cy., 18, GB3017, <ext-link xlink:href="https://doi.org/10.1029/2003GB002150" ext-link-type="DOI">10.1029/2003GB002150</ext-link>, 2004.</mixed-citation></ref>
      <ref id="bib1.bib26"><label>26</label><?label 1?><mixed-citation>Drake, T. W., Raymond, P. A., and Spencer, R. G. M.: Terrestrial carbon inputs to inland waters: A current synthesis of estimates and uncertainty,
Limnol. Oceanogr. Lett., 3, 132–142, <ext-link xlink:href="https://doi.org/10.1002/lol2.10055" ext-link-type="DOI">10.1002/lol2.10055</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib27"><label>27</label><?label 1?><mixed-citation>Dubois, K. D., Lee, D., and Veizer, J.: Isotopic constraints on alkalinity,
dissolved organic carbon, and atmospheric carbon dioxid<?pagebreak page2396?>e fluxes in the
Mississippi River, J. Geophys. Res.-Biogeo., 115, G02018, <ext-link xlink:href="https://doi.org/10.1029/2009JG001102" ext-link-type="DOI">10.1029/2009JG001102</ext-link>, 2010.</mixed-citation></ref>
      <ref id="bib1.bib28"><label>28</label><?label 1?><mixed-citation>EEA: Copernicus Land Monitoring Service – Corine Land Cover (CLC), availablea at: <uri>https://land.copernicus.eu/pan-european/corine-land-cover/clc-2012</uri> (last access: 3 May 2020), 2012.</mixed-citation></ref>
      <ref id="bib1.bib29"><label>29</label><?label 1?><mixed-citation>Garnier, J. and Billen, G.: Ecological interactions in a shallow sand-pit lake (Lake Créteil, Parisian Basin, France): a modelling approach, Hydrobiologia, 275–276, 97–114, <ext-link xlink:href="https://doi.org/10.1007/BF00026703" ext-link-type="DOI">10.1007/BF00026703</ext-link>, 1994.</mixed-citation></ref>
      <ref id="bib1.bib30"><label>30</label><?label 1?><mixed-citation>Garnier, J. and Billen, G.: Production vs. respiration in river systems: an
indicator of an “ecological status”, Sci. Total Environ., 375, 110–124, <ext-link xlink:href="https://doi.org/10.1016/j.scitotenv.2006.12.006" ext-link-type="DOI">10.1016/j.scitotenv.2006.12.006</ext-link>, 2007.</mixed-citation></ref>
      <ref id="bib1.bib31"><label>31</label><?label 1?><mixed-citation>Garnier, J., Billen, G., and Coste, M.: Seasonal succession of diatoms and
Chlorophyceae in the drainage network of the Seine River: Observation and
modeling, Limnol. Oceanogr., 40, 750–765, <ext-link xlink:href="https://doi.org/10.4319/lo.1995.40.4.0750" ext-link-type="DOI">10.4319/lo.1995.40.4.0750</ext-link>,
1995.</mixed-citation></ref>
      <ref id="bib1.bib32"><label>32</label><?label 1?><mixed-citation>Garnier, J., Leporcq, B., Sanchez, N., and Phillippon, X.: Biogeochemical mass-balances (C, N, P, Si) in three large reservoirs of the Seine Basin (France), Biogeochemistry, 47, 119–146, <ext-link xlink:href="https://doi.org/10.1023/A:1006101318417" ext-link-type="DOI">10.1023/A:1006101318417</ext-link>, 1999.</mixed-citation></ref>
      <ref id="bib1.bib33"><label>33</label><?label 1?><mixed-citation>Garnier, J., Billen, G., Hannon, E., Fonbonne, S., Videnina, Y., and Soulie, M.: Modelling the Transfer and Retention of Nutrients in the Drainage Network of the Danube River, Estuar. Coast. Shelf Sci., 54, 285–308,
<ext-link xlink:href="https://doi.org/10.1006/ecss.2000.0648" ext-link-type="DOI">10.1006/ecss.2000.0648</ext-link>, 2002.</mixed-citation></ref>
      <ref id="bib1.bib34"><label>34</label><?label 1?><mixed-citation>Garnier, J., Cébron, A., Tallec, G., Billen, G., Sebilo, M., and Martinez, A.: Nitrogen behaviour and nitrous oxide emission in the tidal Seine River estuary (France) as influenced by human activities in the upstream watershed, Biogeochemistry, 77, 305–326,
<ext-link xlink:href="https://doi.org/10.1007/s10533-005-0544-4" ext-link-type="DOI">10.1007/s10533-005-0544-4</ext-link>, 2006.</mixed-citation></ref>
      <ref id="bib1.bib35"><label>35</label><?label 1?><mixed-citation>Garnier, J., Billen, G., and Cébron, A.: Modelling nitrogen transformations in the lower Seine river and estuary (France): Impact of
wastewater release on oxygenation and <inline-formula><mml:math id="M397" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula> emission, Hydrobiologia, 588, 291–302, <ext-link xlink:href="https://doi.org/10.1007/s10750-007-0670-1" ext-link-type="DOI">10.1007/s10750-007-0670-1</ext-link>, 2007.</mixed-citation></ref>
      <ref id="bib1.bib36"><label>36</label><?label 1?><mixed-citation>Garnier, J., Billen, G., Vilain, G., Martinez, A., Silvestre, M., Mounier, E., and Toche, F.: Nitrous oxide (<inline-formula><mml:math id="M398" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula>) in the Seine river and basin: Observations and budgets, Agr. Ecosyst. Environ., 133, 223–233,
<ext-link xlink:href="https://doi.org/10.1016/j.agee.2009.04.024" ext-link-type="DOI">10.1016/j.agee.2009.04.024</ext-link>, 2009.</mixed-citation></ref>
      <ref id="bib1.bib37"><label>37</label><?label 1?><mixed-citation>
Guerrini, M.-C., Mouchel, J.-M., Meybeck, M., Penven, M. J., Hubert, G., and
Muxart, T.: Le bassin de la Seine: la confrontation du rural et de l'urbain, in La Seine en son bassin, in: Fonctionnement écologique d'un système fluvial anthropisé, edited by: Meybeck, M., de Marsily, G., and Fustec, E., Elsevier, Paris, Amsterdam, Lausanne, 29–73, 1998.</mixed-citation></ref>
      <ref id="bib1.bib38"><label>38</label><?label 1?><mixed-citation>Gypens, N., Lancelot, C., and Borges, A. V.: Carbon dynamics and <inline-formula><mml:math id="M399" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> air–sea exchanges in the eutrophied coastal waters of the Southern Bight of the North Sea: a modelling study, Biogeosciences, 1, 147–157, <ext-link xlink:href="https://doi.org/10.5194/bg-1-147-2004" ext-link-type="DOI">10.5194/bg-1-147-2004</ext-link>, 2004.</mixed-citation></ref>
      <ref id="bib1.bib39"><label>39</label><?label 1?><mixed-citation>Gypens, N., Borges, A. V., and Lancelot, C.: Effect of eutrophication on air–sea <inline-formula><mml:math id="M400" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> fluxes in the coastal Southern North Sea: A model study of the past 50 years, Global Change Biol., 15, 1040–1056,
<ext-link xlink:href="https://doi.org/10.1111/j.1365-2486.2008.01773.x" ext-link-type="DOI">10.1111/j.1365-2486.2008.01773.x</ext-link>, 2009.</mixed-citation></ref>
      <ref id="bib1.bib40"><label>40</label><?label 1?><mixed-citation>Gypens, N., Lacroix, G., Lancelot, C., and Borges, A. V.: Seasonal and
inter-annual variability of air–sea <inline-formula><mml:math id="M401" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> fluxes and seawater carbonate chemistry in the Southern North Sea, Prog. Oceanogr., 88, 59–77, <ext-link xlink:href="https://doi.org/10.1016/j.pocean.2010.11.004" ext-link-type="DOI">10.1016/j.pocean.2010.11.004</ext-link>, 2011.</mixed-citation></ref>
      <ref id="bib1.bib41"><label>41</label><?label 1?><mixed-citation>Habets, F., Boone, A., Champeaux, J. L., Etchevers, P., Franchistéguy, L., Leblois, E., Ledoux, E., Le Moigne, P., Martin, E., Morel, S., Noilhan, J., Seguí, P. Q., Rousset-Regimbeau, F., and Viennot, P.: The SAFRAN-ISBA-MODCOU hydrometeorological model applied over France, J. Geophys. Res.-Atmos., 113, 1–18, <ext-link xlink:href="https://doi.org/10.1029/2007JD008548" ext-link-type="DOI">10.1029/2007JD008548</ext-link>, 2008.</mixed-citation></ref>
      <ref id="bib1.bib42"><label>42</label><?label 1?><mixed-citation>Ho, D. T., Coffineau, N., Hickman, B., Chow, N., Koffman, T., and Schlosser, P.: Influence of current velocity and wind speed on air-water gas exchange in a mangrove estuary, Geophys. Res. Lett., 43, 3813–3821,
<ext-link xlink:href="https://doi.org/10.1002/2016GL068727" ext-link-type="DOI">10.1002/2016GL068727</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib43"><label>43</label><?label 1?><mixed-citation>Hotchkiss, E. R., Hall, R. O., Sponseller, R., Butman, D., Klaminder, J., Laudon, H., Rosvall, M., and Karlsson, J.: Sources and control of <inline-formula><mml:math id="M402" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emissions change with the size of streams and rivers, Nat. Geosci., 8, 696–699, <ext-link xlink:href="https://doi.org/10.1038/ngeo2507" ext-link-type="DOI">10.1038/ngeo2507</ext-link>, 2015.</mixed-citation></ref>
      <ref id="bib1.bib44"><label>44</label><?label 1?><mixed-citation>INSEE: French National Institute of Statistics and Economic Studies,
Recensement de la population 2015, available at: <uri>https://www.insee.fr/fr/information/2008354</uri> (last access: 3 May 2020), 2015.</mixed-citation></ref>
      <ref id="bib1.bib45"><label>45</label><?label 1?><mixed-citation>Joos, F., Bruno, M., Fink, R., Siegenthaler, U., Stocker, T. F., Le Quéré, C., and Sarmiento, J. L.: An efficient and accurate
representation of complex oceanic and biospheric models of anthropogenic carbon uptake, Tellus B, 48, 397–417, <ext-link xlink:href="https://doi.org/10.1034/j.1600-0889.1996.t01-2-00006.x" ext-link-type="DOI">10.1034/j.1600-0889.1996.t01-2-00006.x</ext-link>, 1996.</mixed-citation></ref>
      <ref id="bib1.bib46"><label>46</label><?label 1?><mixed-citation>Kempe, S.: Long-term records of <inline-formula><mml:math id="M403" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> pressure fluctuations in fresh waters, Transp. carbon Miner. major world rivers, part 1, 91–332
available at: <uri>https://www.karstwanderweg.de/publika/gpi/52/116-120/index.htm</uri> (last access: 3 May 2020), 1982.</mixed-citation></ref>
      <ref id="bib1.bib47"><label>47</label><?label 1?><mixed-citation>Kempe, S.: Sinks of the anthropogenically enhanced carbon cycle in surface
fresh waters, J. Geophys. Res., 89, 4657, <ext-link xlink:href="https://doi.org/10.1029/JD089iD03p04657" ext-link-type="DOI">10.1029/JD089iD03p04657</ext-link>, 1984.</mixed-citation></ref>
      <ref id="bib1.bib48"><label>48</label><?label 1?><mixed-citation>Lacarce, E., Le Bas, C., Cousin, J. L., Pesty, B., Toutain, B., Houston Durrant, T., and Montanarella, L.: Data management for monitoring forest soils in Europe for the Biosoil project, Soil Use Manage., 25, 57–65,
<ext-link xlink:href="https://doi.org/10.1111/j.1475-2743.2009.00194.x" ext-link-type="DOI">10.1111/j.1475-2743.2009.00194.x</ext-link>, 2009.</mixed-citation></ref>
      <ref id="bib1.bib49"><label>49</label><?label 1?><mixed-citation>Laruelle, G. G., Marescaux, A., Le Gendre, R., Garnier, J., Rabouille, C., and Thieu, V.: Carbon dynamics along the Seine River network: Insight from a
coupled estuarine/river modeling approach, Front. Mar. Sci.,
<ext-link xlink:href="https://doi.org/10.3389/fmars.2019.00216" ext-link-type="DOI">10.3389/fmars.2019.00216</ext-link>, in press, 2019.</mixed-citation></ref>
      <ref id="bib1.bib50"><label>50</label><?label 1?><mixed-citation>Lauerwald, R., Laruelle, G. G., Hartmann, J., Ciais, P., and Regnier, P. A. G.: Spatial patterns in <inline-formula><mml:math id="M404" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> evasion from the global river network,
Global Biogeochem. Cy., 29, 534–554, <ext-link xlink:href="https://doi.org/10.1002/2014GB004941" ext-link-type="DOI">10.1002/2014GB004941</ext-link>, 2015.</mixed-citation></ref>
      <ref id="bib1.bib51"><label>51</label><?label 1?><mixed-citation>Lauerwald, R., Regnier, P., Camino-serrano, M., Guenet, B., Guimberteau, M.,
Ducharne, A., Polcher, J., and Ciais, P.: ORCHILEAK (revision 3875): A new
model branch to simulate carbon transfers along the terrestrial-aquatic
continuum of the Amazon basin, Geosci. Model Dev., 10, 3821–3859,
<ext-link xlink:href="https://doi.org/10.5194/gmd-10-3821-2017" ext-link-type="DOI">10.5194/gmd-10-3821-2017</ext-link>, 2017.</mixed-citation></ref>
      <ref id="bib1.bib52"><label>52</label><?label 1?><mixed-citation>Li, S., Lu, X. X., and Bush, R. T.: <inline-formula><mml:math id="M405" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> partial pressure and <inline-formula><mml:math id="M406" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> emission in the Lower Mekong River, J. Hydrol., 504, 40–56,
<ext-link xlink:href="https://doi.org/10.1016/j.jhydrol.2013.09.024" ext-link-type="DOI">10.1016/j.jhydrol.2013.09.024</ext-link>, 2013.</mixed-citation></ref>
      <ref id="bib1.bib53"><label>53</label><?label 1?><mixed-citation>Mackenzie, F. T., De Carlo, E. H., and Lerman, A.: Coupled C, N, P, and O Biogeochemical Cycling at the Land-Ocea<?pagebreak page2397?>n Interface, in: Biogeochemistry Vol. 5, Elsevier Inc., 317–342, <ext-link xlink:href="https://doi.org/10.1016/B978-0-12-374711-2.00512-X" ext-link-type="DOI">10.1016/B978-0-12-374711-2.00512-X</ext-link>, 2011.</mixed-citation></ref>
      <ref id="bib1.bib54"><label>54</label><?label 1?><mixed-citation>Marescaux, A., Thieu, V., and Garnier, J.: Carbon dioxide, methane and nitrous oxide emissions from the human-impacted Seine watershed in France, Sci. Total Environ., 643, 247–259, <ext-link xlink:href="https://doi.org/10.1016/j.scitotenv.2018.06.151" ext-link-type="DOI">10.1016/j.scitotenv.2018.06.151</ext-link>,
2018a.</mixed-citation></ref>
      <ref id="bib1.bib55"><label>55</label><?label 1?><mixed-citation>Marescaux, A., Thieu, V., Borges, A. V., and Garnier, J.: Seasonal and spatial variability of the partial pressure of carbon dioxide in the
human-impacted Seine River in France, Sci. Rep., 8, 13961,
<ext-link xlink:href="https://doi.org/10.1038/s41598-018-32332-2" ext-link-type="DOI">10.1038/s41598-018-32332-2</ext-link>, 2018b.</mixed-citation></ref>
      <ref id="bib1.bib56"><label>56</label><?label 1?><mixed-citation>Marx, A., Dusek, J., Jankovec, J., Sanda, M., Vogel, T., van Geldern, R.,
Hartmann, J., and Barth, J. A. C.: A review of <inline-formula><mml:math id="M407" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and associated carbon dynamics in headwater streams: A global perspective, Rev. Geophys., 55, 560–585, <ext-link xlink:href="https://doi.org/10.1002/2016RG000547" ext-link-type="DOI">10.1002/2016RG000547</ext-link>, 2017.</mixed-citation></ref>
      <ref id="bib1.bib57"><label>57</label><?label 1?><mixed-citation>Marx, A., Conrad, M., Aizinger, V., Prechtel, A., Van Geldern, R., and Barth,
J. A. C.: Groundwater data improve modelling of headwater stream <inline-formula><mml:math id="M408" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> outgassing with a stable DIC isotope approach, Biogeosciences, 15, 3093–3106, <ext-link xlink:href="https://doi.org/10.5194/bg-15-3093-2018" ext-link-type="DOI">10.5194/bg-15-3093-2018</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib58"><label>58</label><?label 1?><mixed-citation>
Meehl, G. A., Stocker, T. F., Collins, W. D., Friedlingstein, P. G. A. T.,
Gregory, J. M., Kitoh, A., Knutti, R., Murphy, J. M., N. A., Raper, S. C. B., Watterson, I. G. J. W. A., and Zhao, Z.-C.: Global Climate Projections, in: Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to Fourth Assessment Report of the Intergovernmental Panel on
Climate Change, edited by: Solomon, S., Qin, D., Manning, M., Chen, Z.,
Marquis, M., Averyt, K. B., Tignor, M., and Miller, H. L., Cambridge, UK and New York, NY, USA, p. 996, 2007.</mixed-citation></ref>
      <ref id="bib1.bib59"><label>59</label><?label 1?><mixed-citation>Mégnien, C.: Synthèse géologique du bassin de Paris, edited by:
Mégnien, C., Édition du B. R. G. M., available at:
<uri>https://books.google.fr/books?id=x0w9bwAACAAJ</uri> (last access: 3 May 2020), 1980.</mixed-citation></ref>
      <ref id="bib1.bib60"><label>60</label><?label 1?><mixed-citation>Menon, M., Rousseva, S., Nikolaidis, N. P., van Gaans, P., Panagos, P., de Souza, D. M., Ragnarsdottir, K. V., Lair, G. J., Weng, L., Bloem, J., Kram, P., Novak, M., Davidsdottir, B., Gisladottir, G., Robinson, D. A., Reynolds, B., White, T., Lundin, L., Zhang, B., Duffy, C., Bernasconi, S. M., De Ruiter, P., Blum, W. E. H., and Banwart, S. A.: SoilTrEC: A global initiative on critical zone research and integration, Environ. Sci. Pollut. Res., 21, 3191–3195, <ext-link xlink:href="https://doi.org/10.1007/s11356-013-2346-x" ext-link-type="DOI">10.1007/s11356-013-2346-x</ext-link>, 2014.</mixed-citation></ref>
      <ref id="bib1.bib61"><label>61</label><?label 1?><mixed-citation>Meybeck, M.: Riverine transport of atmospheric carbon: Sources, global
typology and budget, Water Air Soil Pollut., 70, 443–463, <ext-link xlink:href="https://doi.org/10.1007/BF01105015" ext-link-type="DOI">10.1007/BF01105015</ext-link>, 1993.</mixed-citation></ref>
      <ref id="bib1.bib62"><label>62</label><?label 1?><mixed-citation>Millero, F. J.: The thermodynamics of the carbonate system in seawater, Geochim. Cosmochim. Ac., 43, 1651–1661, <ext-link xlink:href="https://doi.org/10.1016/0016-7037(79)90184-4" ext-link-type="DOI">10.1016/0016-7037(79)90184-4</ext-link>, 1979.</mixed-citation></ref>
      <ref id="bib1.bib63"><label>63</label><?label 1?><mixed-citation>Minaudo, C., Curie, F., Jullian, Y., Gassama, N., and Moatar, F.: QUAL-NET, a
high temporal-resolution eutrophication model for large hydrographic networks, Biogeosciences, 15, 2251–2269, <ext-link xlink:href="https://doi.org/10.5194/bg-15-2251-2018" ext-link-type="DOI">10.5194/bg-15-2251-2018</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib64"><label>64</label><?label 1?><mixed-citation>Nakayama, T.: New perspective for eco-hydrology model to constrain missing
role of inland waters on boundless biogeochemical cycle in terrestrial–aquatic continuum, Ecohydrol. Hydrobiol., 16, 138–148,
<ext-link xlink:href="https://doi.org/10.1016/j.ecohyd.2016.07.002" ext-link-type="DOI">10.1016/j.ecohyd.2016.07.002</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib65"><label>65</label><?label 1?><mixed-citation>
O'Connor, D. J. and Dobbins, W. E.: Mechanism of reaeration in natural streams, Trans. Am. Soc. Civ. Eng., 123, 641–684, 1958.</mixed-citation></ref>
      <ref id="bib1.bib66"><label>66</label><?label 1?><mixed-citation>
Öquist, M. G., Wallin, M., Seibert, J., Bishop, K., and Laudon, H.: Dissolved Inorganic Carbon Export Across the Soil/Stream Interface and Its Fate in a Boreal Headwater Stream, Environ. Sci. Technol., 43, 7364–7369, 2009.</mixed-citation></ref>
      <ref id="bib1.bib67"><label>67</label><?label 1?><mixed-citation>Passy, P., Le Gendre, R., Garnier, J., Cugier, P., Callens, J., Paris, F.,
Billen, G., Riou, P., and Romero, E.: Eutrophication modelling chain for
improved management strategies to prevent algal blooms in the Bay of Seine,
Mar. Ecol. Prog. Ser., 543, 107–125, <ext-link xlink:href="https://doi.org/10.3354/meps11533" ext-link-type="DOI">10.3354/meps11533</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib68"><label>68</label><?label 1?><mixed-citation>Pelletier, G. J., Chapra, S. C., and Tao, H.: QUAL2Kw – A framework for
modeling water quality in streams and rivers using a genetic algorithm for
calibration, Environ. Model. Softw., 21, 419–425, <ext-link xlink:href="https://doi.org/10.1016/j.envsoft.2005.07.002" ext-link-type="DOI">10.1016/j.envsoft.2005.07.002</ext-link>, 2006.</mixed-citation></ref>
      <ref id="bib1.bib69"><label>69</label><?label 1?><mixed-citation>Pierrot, D., Lewis, D. E., and Wallace, D. W. R.: MS Excel Program Developed
for <inline-formula><mml:math id="M409" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> System Calculations, ORNL/CDIAC-105a, Carbon Dioxide Inf. Anal. Center, Oak Ridge Natl. Lab. US Dep. Energy, Oak Ridge, Tennessee,
<ext-link xlink:href="https://doi.org/10.3334/CDIAC/otg.CO2SYS_XLS_CDIAC105a" ext-link-type="DOI">10.3334/CDIAC/otg.CO2SYS_XLS_CDIAC105a</ext-link>, 2006.</mixed-citation></ref>
      <ref id="bib1.bib70"><label>70</label><?label 1?><mixed-citation>Pomerol, C. and Feugueur, L. L.: Bassin de Paris: Ile de France, Pays de
Bray, Masson, Paris, available at:
<uri>https://books.google.fr/books?id=SAoeAQAAMAAJ</uri> (last access: 3 May 2020), 1986.</mixed-citation></ref>
      <ref id="bib1.bib71"><label>71</label><?label 1?><mixed-citation>Prairie, Y. T. and Cole, J. J.: Carbon, Unifying Currency, Encycl. Inl. Waters, 2, 743–746, <ext-link xlink:href="https://doi.org/10.1016/B978-012370626-3.00107-1" ext-link-type="DOI">10.1016/B978-012370626-3.00107-1</ext-link>, 2009.</mixed-citation></ref>
      <ref id="bib1.bib72"><label>72</label><?label 1?><mixed-citation>QGIS Development Team: QGIS Geographic Information System 2.18, Open Source
Geospatial Found, available at: <uri>http://qgis.osgeo.org/</uri> (last access: 3 May 2020), 2016.</mixed-citation></ref>
      <ref id="bib1.bib73"><label>73</label><?label 1?><mixed-citation>Quintana-Seguí, P., Le Moigne, P., Durand, Y., Martin, E., Habets, F.,
Baillon, M., Canellas, C., Franchisteguy, L., and Morel, S.: Analysis of
near-surface atmospheric variables: Validation of the SAFRAN analysis over
France, J. Appl. Meteorol. Clim., 47, 92–107, <ext-link xlink:href="https://doi.org/10.1175/2007JAMC1636.1" ext-link-type="DOI">10.1175/2007JAMC1636.1</ext-link>, 2008.</mixed-citation></ref>
      <ref id="bib1.bib74"><label>74</label><?label 1?><mixed-citation>Raymond, P. A., Caraco, N. F., and Cole, J. J.: Carbon dioxide concentration
and atmospheric flux in the Hudson River, Estuaries, 20, 381–390,
<ext-link xlink:href="https://doi.org/10.2307/1352351" ext-link-type="DOI">10.2307/1352351</ext-link>, 1997.</mixed-citation></ref>
      <ref id="bib1.bib75"><label>75</label><?label 1?><mixed-citation>Raymond, P. A., Zappa, C. J., Butman, D., Bott, T. L., Potter, J., Mulholland, P., Laursen, A. E., McDowell, W. H., and Newbold, D.: Scaling the
gas transfer velocity and hydraulic geometry in streams and small rivers,
Limnol. Oceanogr. Fluids Environ., 2, 41–53, <ext-link xlink:href="https://doi.org/10.1215/21573689-1597669" ext-link-type="DOI">10.1215/21573689-1597669</ext-link>, 2012.</mixed-citation></ref>
      <ref id="bib1.bib76"><label>76</label><?label 1?><mixed-citation>Raymond, P. A., Hartmann, J., Lauerwald, R., Sobek, S., McDonald, C., Hoover, M., Butman, D., Striegl, R., Mayorga, E., Humborg, C., Kortelainen, P., Dürr, H., Meybeck, M., Ciais, P., and Guth, P.: Global carbon dioxide
emissions from inland waters, Nature, 503, 355–359, <ext-link xlink:href="https://doi.org/10.1038/nature12760" ext-link-type="DOI">10.1038/nature12760</ext-link>, 2013.</mixed-citation></ref>
      <ref id="bib1.bib77"><label>77</label><?label 1?><mixed-citation>R Core team: R Core Team, R A Lang. Environ. Stat. Comput. R Found. Stat.
Comput., Vienna, Austria, 275–286, ISBN 3-900051-07-0, available at: <uri>http://www.R-project.org/</uri> (last access: 3 May 2020), 2015.</mixed-citation></ref>
      <ref id="bib1.bib78"><label>78</label><?label 1?><mixed-citation>Regnier, P., Friedlingstein, P., Ciais, P., Mackenzie, F. T., Gruber, N.,
Janssens, I. A., Laruelle, G. G., Lauerwald, R., Luyssaert, S., Andersson, A. J., Arndt, S., Arnosti, C., Borges, A. V., Dale, A. W., Gallego-Sala, A.,
Goddéris, Y., Goossens, N., Hartmann, J., Heinze, C., Ilyina, T., Joos,
F., LaRowe, D. E., Leifeld, J., Meysman, F. J. R., Munhoven, G., Raymond, P.
A., Spahni, R., Suntharalingam, P., and Thullner, M.: Anthropogeni<?pagebreak page2398?>c perturbation of the carbon fluxes from land to ocean, Nat. Geosci., 6, 597–607, <ext-link xlink:href="https://doi.org/10.1038/ngeo1830" ext-link-type="DOI">10.1038/ngeo1830</ext-link>, 2013a.</mixed-citation></ref>
      <ref id="bib1.bib79"><label>79</label><?label 1?><mixed-citation>Regnier, P., Arndt, S., Goossens, N., Volta, C., Laruelle, G. G., Lauerwald,
R., and Hartmann, J.: Modelling Estuarine Biogeochemical Dynamics: From the
Local to the Global Scale, Aquat. Geochem., 19, 591–626,
<ext-link xlink:href="https://doi.org/10.1007/s10498-013-9218-3" ext-link-type="DOI">10.1007/s10498-013-9218-3</ext-link>, 2013b.</mixed-citation></ref>
      <ref id="bib1.bib80"><label>80</label><?label 1?><mixed-citation>
Rocher, V. and Azimi, S.: Evolution de la qualité de la Seine en lien
avec les progrès de l'assainissement, Johanet, Paris, 2017.</mixed-citation></ref>
      <ref id="bib1.bib81"><label>81</label><?label 1?><mixed-citation>Romero, E., Garnier, J., Lassaletta, L., Billen, G., Le Gendre, R., Riou, P.,
and Cugier, P.: Large-scale patterns of river inputs in southwestern Europe:
Seasonal and interannual variations and potential eutrophication effects at
the coastal zone, Biogeochemistry, 113, 481–505, <ext-link xlink:href="https://doi.org/10.1007/s10533-012-9778-0" ext-link-type="DOI">10.1007/s10533-012-9778-0</ext-link>, 2013.</mixed-citation></ref>
      <ref id="bib1.bib82"><label>82</label><?label 1?><mixed-citation>Romero, E., Le Gendre, R., Garnier, J., Billen, G., Fisson, C., Silvestre, M., and Riou, P.: Long-term water quality in the lower Seine: Lessons learned
over 4 decades of monitoring, Environ. Sci. Policy, 58, 141–154,
<ext-link xlink:href="https://doi.org/10.1016/j.envsci.2016.01.016" ext-link-type="DOI">10.1016/j.envsci.2016.01.016</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib83"><label>83</label><?label 1?><mixed-citation>Sawakuchi, H. O., Neu, V., Ward, N. D., de Barros, M. L. C., Valerio, A. M.,
Gagne-Maynard, W., Cunha, A. C., Less, D. F. S., Diniz, J. E. M., Brito, D.
C., Krusche, A. V., and Richey, J. E.: Carbon Dioxide Emissions along the
Lower Amazon River, Front. Mar. Sci., 4, 1–12, <ext-link xlink:href="https://doi.org/10.3389/fmars.2017.00076" ext-link-type="DOI">10.3389/fmars.2017.00076</ext-link>, 2017.</mixed-citation></ref>
      <ref id="bib1.bib84"><label>84</label><?label 1?><mixed-citation>Servais, P., Billen, G., and Hascoët, M. C.: Determination of the
biodegradable fraction of dissolved organic matter in waters, Water Res., 21, 445–450, <ext-link xlink:href="https://doi.org/10.1016/0043-1354(87)90192-8" ext-link-type="DOI">10.1016/0043-1354(87)90192-8</ext-link>, 1995.</mixed-citation></ref>
      <ref id="bib1.bib85"><label>85</label><?label 1?><mixed-citation>Servais, P., Garnier, J., Demarteau, N., Brion, N., and Billen, G.: Supply of
organic matter and bacteria to aquatic ecosystems through waste water
effluents, Water Res., 33, 3521–3531, <ext-link xlink:href="https://doi.org/10.1016/S0043-1354(99)00056-1" ext-link-type="DOI">10.1016/S0043-1354(99)00056-1</ext-link>, 1999.</mixed-citation></ref>
      <ref id="bib1.bib86"><label>86</label><?label 1?><mixed-citation>Servais, P., Billen, G., Goncalves, A., and Garcia-Armisen, T.: Modelling microbiological water quality in the Seine river drainage network: past, present and future situations, Hydrol. Earth Syst. Sci., 11, 1581–1592, <ext-link xlink:href="https://doi.org/10.5194/hess-11-1581-2007" ext-link-type="DOI">10.5194/hess-11-1581-2007</ext-link>, 2007.</mixed-citation></ref>
      <ref id="bib1.bib87"><label>87</label><?label 1?><mixed-citation>Sferratore, A., Billen, G., Garnier, J., Smedberg, E., Humborg, C., and Rahm,
L.: Modelling nutrient fluxes from sub-arctic basins: Comparison of pristine
vs. dammed rivers, J. Mar. Syst., 73, 236–249, <ext-link xlink:href="https://doi.org/10.1016/j.jmarsys.2007.10.012" ext-link-type="DOI">10.1016/j.jmarsys.2007.10.012</ext-link>, 2008.</mixed-citation></ref>
      <ref id="bib1.bib88"><label>88</label><?label 1?><mixed-citation>
Smitz, J. S., Everbecq, E., Deliège, J.-F., Descy, J.-P., Wollast, R., and Vanderborght, J. P.: PEGASE, une méthodologie et un outil de simulation prévisionnelle pour la gestion de la qualité des eaux de
surface, Trib. l'eau, 588, 73–82, 1997.</mixed-citation></ref>
      <ref id="bib1.bib89"><label>89</label><?label 1?><mixed-citation>Strahler, A. N.: Hypsometric (area-altitude) analysis of erosional topography, Bull. Geol. Soc. Am., 63, 1117–1142, <ext-link xlink:href="https://doi.org/10.1130/0016-7606(1952)63" ext-link-type="DOI">10.1130/0016-7606(1952)63</ext-link>, 1952.</mixed-citation></ref>
      <ref id="bib1.bib90"><label>90</label><?label 1?><mixed-citation>Strahler, A. N.: Quantitative Analysis of Watershed Geomorphology, Geophys.
Union Trans., 38, 913–920, <ext-link xlink:href="https://doi.org/10.1029/TR038i006p00913" ext-link-type="DOI">10.1029/TR038i006p00913</ext-link>, 1957.</mixed-citation></ref>
      <ref id="bib1.bib91"><label>91</label><?label 1?><mixed-citation>
Tanaka, K., Kriegler, E., Bruckner, T., Georg, H., Knorr, W., and Raddatz, T.: Aggregated Carbon Cycle, Atmospheric Chemistry, and Climate Model (ACC2)
– description of the forward and inverse modes, Max Planck Institute for Meteorology, Hamburg, Germany, 1–188, 2007.</mixed-citation></ref>
      <ref id="bib1.bib92"><label>92</label><?label 1?><mixed-citation>Telmer, K. and Veizer, J.: Carbon fluxes, <inline-formula><mml:math id="M410" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and substrate weathering in a large northern river basin, Canada: Carbon isotope perspectives, Chem. Geol., 159, 61–86, <ext-link xlink:href="https://doi.org/10.1016/S0009-2541(99)00034-0" ext-link-type="DOI">10.1016/S0009-2541(99)00034-0</ext-link>, 1999.</mixed-citation></ref>
      <ref id="bib1.bib93"><label>93</label><?label 1?><mixed-citation>Thieu, V., Billen, G., and Garnier, J.: Nutrient transfer in three contrasting NW European watersheds: the Seine, Somme, and Scheldt Rivers. A
comparative application of the Seneque/Riverstrahler model, Water Res., 43, 1740–1754, <ext-link xlink:href="https://doi.org/10.1016/j.watres.2009.01.014" ext-link-type="DOI">10.1016/j.watres.2009.01.014</ext-link>, 2009.</mixed-citation></ref>
      <ref id="bib1.bib94"><label>94</label><?label 1?><mixed-citation>Tóth, G., Jones, A., and Montanarella, L. (Eds.): LUCAS Topsoil Survey. Methodology, data and results, in: EUR26102 – Scientific and Technical Research series, JRC Technical Reports, Publications Office of the European Union, Luxembourg, <ext-link xlink:href="https://doi.org/10.2788/97922" ext-link-type="DOI">10.2788/97922</ext-link>, 2013.</mixed-citation></ref>
      <ref id="bib1.bib95"><label>95</label><?label 1?><mixed-citation>Vannote, R. L., Minshall, G. W., Cummins, K. W., Sedell, J. R., and Cushing, C. E.: The River Continuum Concept, Can. J. Fish. Aquat. Sci., 37, 130–137, <ext-link xlink:href="https://doi.org/10.1139/f80-017" ext-link-type="DOI">10.1139/f80-017</ext-link>, 1980.</mixed-citation></ref>
      <ref id="bib1.bib96"><label>96</label><?label 1?><mixed-citation>Venkiteswaran, J. J., Schiff, S. L., and Wallin, M. B.: Large carbon dioxide
fluxes from headwater boreal and sub-boreal streams, PLoS One, 9, 22–25,
<ext-link xlink:href="https://doi.org/10.1371/journal.pone.0101756" ext-link-type="DOI">10.1371/journal.pone.0101756</ext-link>, 2014.</mixed-citation></ref>
      <ref id="bib1.bib97"><label>97</label><?label 1?><mixed-citation>Vilain, G., Garnier, J., Passy, P., Silvestre, M., and Billen, G.: Budget of
<inline-formula><mml:math id="M411" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">N</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula> emissions at the watershed scale: Role of land cover and topography (the Orgeval basin, France), Biogeosciences, 9, 1085–1097,
<ext-link xlink:href="https://doi.org/10.5194/bg-9-1085-2012" ext-link-type="DOI">10.5194/bg-9-1085-2012</ext-link>, 2012.</mixed-citation></ref>
      <ref id="bib1.bib98"><label>98</label><?label 1?><mixed-citation>Vilmin, L., Flipo, N., Escoffier, N., Rocher, V., and Groleau, A.: Carbon fate in a large temperate human-impacted river system: Focus on benthic
dynamics, Global Biogeochem. Cy., 30, 1086–1104, <ext-link xlink:href="https://doi.org/10.1002/2015GB005271" ext-link-type="DOI">10.1002/2015GB005271</ext-link>, 2016.</mixed-citation></ref>
      <ref id="bib1.bib99"><label>99</label><?label 1?><mixed-citation>Vilmin, L., Flipo, N., Escoffier, N., and Groleau, A.: Estimation of the water quality of a large urbanized river as defined by the European WFD: what is the optimal sampling frequency?, Environ. Sci. Pollut. Res., 25, 23485–23501, <ext-link xlink:href="https://doi.org/10.1007/s11356-016-7109-z" ext-link-type="DOI">10.1007/s11356-016-7109-z</ext-link>, 2018.</mixed-citation></ref>
      <ref id="bib1.bib100"><label>100</label><?label 1?><mixed-citation>Volta, C., Arndt, S., Savenije, H. H. G., Laruelle, G. G., and Regnier, P.:
C-GEM (v 1.0): A new, cost-efficient biogeochemical model for estuaries and
its application to a funnel-shaped system, Geosci. Model Dev., 7, 1271–1295, <ext-link xlink:href="https://doi.org/10.5194/gmd-7-1271-2014" ext-link-type="DOI">10.5194/gmd-7-1271-2014</ext-link>, 2014.</mixed-citation></ref>
      <ref id="bib1.bib101"><label>101</label><?label 1?><mixed-citation>Whitehead, P. G., Williams, R. J., and Lewis, D. R.: Quality simulation along
river systems (QUASAR): Model theory and development, Sci. Total Environ., 194–195, 447–456, <ext-link xlink:href="https://doi.org/10.1016/S0048-9697(96)05382-X" ext-link-type="DOI">10.1016/S0048-9697(96)05382-X</ext-link>, 1997.</mixed-citation></ref>
      <ref id="bib1.bib102"><label>102</label><?label 1?><mixed-citation>Xu, Y. J., Xu, Z., and Yang, R.: Rapid daily change in surface water <inline-formula><mml:math id="M412" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and <inline-formula><mml:math id="M413" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> evasion: A case study in a subtropical eutrophic lake in Southern USA, J. Hydrol., 570, 486–494, <ext-link xlink:href="https://doi.org/10.1016/j.jhydrol.2019.01.016" ext-link-type="DOI">10.1016/j.jhydrol.2019.01.016</ext-link>, 2019.</mixed-citation></ref>
      <ref id="bib1.bib103"><label>103</label><?label 1?><mixed-citation>Yang, C., Telmer, K., and Veizer, J.: Chemical dynamics of the “St. Lawrence” riverine system: <inline-formula><mml:math id="M414" display="inline"><mml:mrow class="chem"><mml:mi mathvariant="italic">δ</mml:mi><mml:msub><mml:mi mathvariant="normal">DH</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula>, <inline-formula><mml:math id="M415" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn mathvariant="normal">18</mml:mn></mml:msup><mml:msub><mml:mi mathvariant="normal">OH</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub><mml:mi mathvariant="normal">O</mml:mi></mml:mrow></mml:math></inline-formula>, <inline-formula><mml:math id="M416" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn mathvariant="normal">13</mml:mn></mml:msup><mml:mi mathvariant="normal">CDIC</mml:mi></mml:mrow></mml:math></inline-formula>,
<inline-formula><mml:math id="M417" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="italic">δ</mml:mi><mml:mn mathvariant="normal">34</mml:mn></mml:msup><mml:mi mathvariant="normal">S</mml:mi></mml:mrow></mml:math></inline-formula> sulfate, and dissolved <inline-formula><mml:math id="M418" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi/><mml:mn mathvariant="normal">87</mml:mn></mml:msup><mml:mi mathvariant="normal">Sr</mml:mi><mml:msup><mml:mo>/</mml:mo><mml:mn mathvariant="normal">86</mml:mn></mml:msup><mml:mi mathvariant="normal">Sr</mml:mi></mml:mrow></mml:math></inline-formula>, Geochim. Cosmochim. Ac., 60, 851–865, <ext-link xlink:href="https://doi.org/10.1016/0016-7037(95)00445-9" ext-link-type="DOI">10.1016/0016-7037(95)00445-9</ext-link>, 1996.</mixed-citation></ref>
      <ref id="bib1.bib104"><label>104</label><?label 1?><mixed-citation>Yang, R., Xu, Z., Liu, S., and Xu, Y. J.: Daily <inline-formula><mml:math id="M419" display="inline"><mml:mrow class="chem"><mml:mi>p</mml:mi><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> and <inline-formula><mml:math id="M420" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> flux variations in a subtropical mesotrophic shallow lake, Water Res., 153, 29–38, <ext-link xlink:href="https://doi.org/10.1016/j.watres.2019.01.012" ext-link-type="DOI">10.1016/j.watres.2019.01.012</ext-link>, 2019.</mixed-citation></ref>
      <ref id="bib1.bib105"><label>105</label><?label 1?><mixed-citation>Zeebe, R. and Wolf-Gladrow, D.: <inline-formula><mml:math id="M421" display="inline"><mml:mrow class="chem"><mml:msub><mml:mi mathvariant="normal">CO</mml:mi><mml:mn mathvariant="normal">2</mml:mn></mml:msub></mml:mrow></mml:math></inline-formula> in Seawater-Equilibrium, Kinetics, Isotopes, in: Elsevier Oceanography Book Series 65, Elsevier, Amsterdam, 346 pp., <ext-link xlink:href="https://doi.org/10.1016/S0422-9894(01)80002-7" ext-link-type="DOI">10.1016/S0422-9894(01)80002-7</ext-link>, 2001.</mixed-citation></ref>

  </ref-list></back>
    <!--<article-title-html>Modeling inorganic carbon dynamics in  the Seine River continuum in France</article-title-html>
<abstract-html><p>Inland waters are an active component of the carbon cycle where
transformations and transports are associated with carbon dioxide (CO<sub>2</sub>) outgassing. This study estimated CO<sub>2</sub> emissions from the human-impacted Seine River (France) and provided a detailed budget of aquatic carbon transfers for organic and inorganic forms, including the in-stream metabolism along the whole Seine River network. The existing process-based biogeochemical pyNuts-Riverstrahler model was supplemented with a newly developed inorganic carbon module and simulations were performed for the recent time period 2010–2013. New input constraints for the modeling of riverine inorganic carbon were documented by field measurements and complemented by analysis of existing databases. The resulting dissolved inorganic carbon (DIC) concentrations in the Seine aquifers ranged from 25 to 92&thinsp;mg&thinsp;C&thinsp;L<sup>−1</sup>, while in wastewater treatment plant (WWTP) effluents our DIC measurements averaged 70&thinsp;mg&thinsp;C&thinsp;L<sup>−1</sup>.</p><p>Along the main stem of the Seine River, simulations of DIC, total alkalinity, pH and CO<sub>2</sub> concentrations were of the same order of
magnitude as the observations, but seasonal variability was not always well
reproduced. Our simulations demonstrated the CO<sub>2</sub> supersaturation with respect to atmospheric concentrations over the entire Seine River network. The most significant outgassing was in lower-order streams while peaks were simulated downstream of the major WWTP effluent. For the period studied (2010–2013), the annual average of simulated CO<sub>2</sub> emissions from the Seine drainage network were estimated at 364±99&thinsp;Gg&thinsp;C&thinsp;yr<sup>−1</sup>.</p><p>Results from metabolism analysis in the Seine hydrographic network
highlighted the importance of benthic activities in headwaters while
planktonic activities occurred mainly downstream in larger rivers. The net
ecosystem productivity remained negative throughout the 4 simulated years
and over the entire drainage network, highlighting the heterotrophy of the
basin. 

<strong>Highlights</strong>
<ul class="itemize"><li class="item"><div class="para"><p>CO<sub>2</sub> emission from the Seine River was estimated at 364±99&thinsp;Gg&thinsp;C&thinsp;yr<sup>−1</sup> with the Riverstrahler model.</p></div></li><li class="item"><div class="para"><p>CO<sub>2</sub> riverine concentrations are modulated by groundwater discharge and instream metabolism.</p></div></li><li class="item"><div class="para"><p>CO<sub>2</sub> emissions account for 31&thinsp;% of inorganic carbon exports, the rest being exported as DIC.</p></div></li></ul></p></abstract-html>
<ref-html id="bib1.bib1"><label>1</label><mixed-citation>
Abril, G., Bouillon, S., Darchambeau, F., Teodoru, C. R., Marwick, T. R.,
Tamooh, F., Ochieng Omengo, F., Geeraert, N., Deirmendjian, L., Polsenaere,
P., and Borges, A. V.: Technical Note: Large overestimation of <i>p</i>CO<sub>2</sub> calculated from pH and alkalinity in acidic, organic-rich freshwaters, Biogeosciences, 12, 67–78, <a href="https://doi.org/10.5194/bg-12-67-2015" target="_blank">https://doi.org/10.5194/bg-12-67-2015</a>, 2015.
</mixed-citation></ref-html>
<ref-html id="bib1.bib2"><label>2</label><mixed-citation>
Aissa-Grouz, N., Garnier, J., and Billen, G.: Long trend reduction of phosphorus wastewater loading in the Seine: determination of phosphorus
speciation and sorption for modeling algal growth, Environ. Sci. Pollut.
Res., 25, 23515–23528, <a href="https://doi.org/10.1007/s11356-016-7555-7" target="_blank">https://doi.org/10.1007/s11356-016-7555-7</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib3"><label>3</label><mixed-citation>
Aksoy, E., Yigini, Y., and Montanarella, L.: Combining soil databases for topsoil organic carbon mapping in Europe, PLoS One, 11, 1–17,
<a href="https://doi.org/10.1371/journal.pone.0152098" target="_blank">https://doi.org/10.1371/journal.pone.0152098</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib4"><label>4</label><mixed-citation>
Albinet, M. : Piézométrie moyennes eaux de 1967: Carte hydrogéologique du bassin de Paris au 1∕500 000, Editions BRGM, Paris, 1967.
</mixed-citation></ref-html>
<ref-html id="bib1.bib5"><label>5</label><mixed-citation>
Alin, S. R., Rasera, M. M. D. F. F. L., Salimon, C. I., Richey, J. E.,
Holtgrieve, G. W., Krusche, A. V., and Snidvongs, A.: Physical controls on
carbon dioxide transfer velocity and flux in low-gradient river systems and
implications for regional carbon budgets, J. Geophys. Res., 116, G01009,
<a href="https://doi.org/10.1029/2010jg001398" target="_blank">https://doi.org/10.1029/2010jg001398</a>, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib6"><label>6</label><mixed-citation>
Alshboul, Z., Encinas-Fernández, J., Hofmann, H., Lorke, A.,
Encinas-Ferna, J., Hofmann, H., Lorke, A., Encinas-Fernández, J.,
Hofmann, H., and Lorke, A.: Export of dissolved methane and carbon dioxide
with effluents from municipal wastewater treatment plants, Environ. Sci.
Technol., 50, 5555–5563, <a href="https://doi.org/10.1021/acs.est.5b04923" target="_blank">https://doi.org/10.1021/acs.est.5b04923</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib7"><label>7</label><mixed-citation>
Arnold, J. G. and Allen, P. M.: Automated methods for estimating baseflow and ground water recharge from streamflow records, J. Am. Water Resour. Assoc., 35, 411–424, <a href="https://doi.org/10.1111/j.1752-1688.1999.tb03599.x" target="_blank">https://doi.org/10.1111/j.1752-1688.1999.tb03599.x</a>, 1999.
</mixed-citation></ref-html>
<ref-html id="bib1.bib8"><label>8</label><mixed-citation>
Aufdenkampe, A. K., Mayorga, E., Raymond, P. A., Melack, J. M., Doney, S. C., Alin, S. R., Aalto, R. E., and Yoo, K.: Riverine coupling of biogeochemical cycles between land, oceans, and atmosphere, Front. Ecol. Environ., 9, 53–60, <a href="https://doi.org/10.1890/100014" target="_blank">https://doi.org/10.1890/100014</a>, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib9"><label>9</label><mixed-citation>
Aumont, O., Ethé, C., Tagliabue, A., Bopp, L., and Gehlen, M.: PISCES-v2:
An ocean biogeochemical model for carbon and ecosystem studies, Geosci. Model Dev., 8, 2465–2513, <a href="https://doi.org/10.5194/gmd-8-2465-2015" target="_blank">https://doi.org/10.5194/gmd-8-2465-2015</a>, 2015.
</mixed-citation></ref-html>
<ref-html id="bib1.bib10"><label>10</label><mixed-citation>
Battin, T. J., Kaplan, L. a., Findlay, S., Hopkinson, C. S., Marti, E., Packman, A. I., Newbold, J. D., and Sabater, F.: Biophysical controls on
organic carbon fluxes in fluvial networks, Nat. Geosci., 2, 595–595,
<a href="https://doi.org/10.1038/ngeo602" target="_blank">https://doi.org/10.1038/ngeo602</a>, 2009a.
</mixed-citation></ref-html>
<ref-html id="bib1.bib11"><label>11</label><mixed-citation>
Battin, T. J., Luyssaert, S., Kaplan, L. a., Aufdenkampe, A. K., Richter, A.,
and Tranvik, L. J.: The boundless carbon cycle, Nat. Geosci., 2, 598–600, <a href="https://doi.org/10.1038/ngeo618" target="_blank">https://doi.org/10.1038/ngeo618</a>, 2009b.
</mixed-citation></ref-html>
<ref-html id="bib1.bib12"><label>12</label><mixed-citation>
Billen, G. and Garnier, J.: Nitrogen transfers through the Seine drainage
network: a budget based on the application of the `Riverstrahler' model,
Hydrobiologia, 410, 139–150, <a href="https://doi.org/10.1023/A:1003838116725" target="_blank">https://doi.org/10.1023/A:1003838116725</a>, 1999.
</mixed-citation></ref-html>
<ref-html id="bib1.bib13"><label>13</label><mixed-citation>
Billen, G. and Servais, P.: Modélisation des processus de dégradation bactérienne de la matière organique en milieu aquatique, in: Micro-organismes dans les écosystèmes océaniques, edited by: Bianchi, M., Marty, D., Bertrand, J. C., Caumette, P., and Gauthier, M., Masson, Paris, 219–245, 1989.
</mixed-citation></ref-html>
<ref-html id="bib1.bib14"><label>14</label><mixed-citation>
Billen, G., Garnier, J., and Hanset, P.: Modelling phytoplankton development
in whole drainage networks: the RIVERSTRAHLER Model applied to the Seine river system, Hydrobiologia, 289, 119–137, <a href="https://doi.org/10.1007/BF00007414" target="_blank">https://doi.org/10.1007/BF00007414</a>, 1994.
</mixed-citation></ref-html>
<ref-html id="bib1.bib15"><label>15</label><mixed-citation>
Billen, G., Garnier, J., Ficht, A., and Cun, C.: Modeling the Response of Water Quality in the Seine River Estuary to Human Activity in its Watershed Over the Last 50 Years, Estuaries, 24, 977–993, 2001.
</mixed-citation></ref-html>
<ref-html id="bib1.bib16"><label>16</label><mixed-citation>
Billen, G., Garnier, J., Némery, J., Sebilo, M., Sferratore, a, Barles,
S., Benoit, P., and Benoît, M.: A long-term view of nutrient transfers
through the Seine river continuum, Sci. Total Environ., 375, 80–97,
<a href="https://doi.org/10.1016/j.scitotenv.2006.12.005" target="_blank">https://doi.org/10.1016/j.scitotenv.2006.12.005</a>, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib17"><label>17</label><mixed-citation>
Billen, G., Ramarson, A., Thieu, V., Théry, S., Silvestre, M., Pasquier,
C., Hénault, C., and Garnier, J.: Nitrate retention at the river–watershed interface: a new conceptual modeling approach, Biogeochemistry, 139, 31–51, <a href="https://doi.org/10.1007/s10533-018-0455-9" target="_blank">https://doi.org/10.1007/s10533-018-0455-9</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib18"><label>18</label><mixed-citation>
Borges, A. V., Schiettecatte, L. S., Abril, G., Delille, B., and Gazeau, F.:
Carbon dioxide in European coastal waters, Estuar. Coast. Shelf Sci., 70,
375–387, <a href="https://doi.org/10.1016/j.ecss.2006.05.046" target="_blank">https://doi.org/10.1016/j.ecss.2006.05.046</a>, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib19"><label>19</label><mixed-citation>
Borrelli, P., Van Oost, K., Meusburger, K., Alewell, C., Lugato, E., and
Panagos, P.: A step towards a holistic assessment of soil degradation in
Europe: Coupling on-site erosion with sediment transfer and carbon fluxes,
Environ. Res., 161, 291–298, <a href="https://doi.org/10.1016/j.envres.2017.11.009" target="_blank">https://doi.org/10.1016/j.envres.2017.11.009</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib20"><label>20</label><mixed-citation>
Butman, D. and Raymond, P. A.: Significant efflux of carbon dioxide from streams and rivers in the United States, Nat. Geosci., 4, 839–842,
<a href="https://doi.org/10.1038/ngeo1294" target="_blank">https://doi.org/10.1038/ngeo1294</a>, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib21"><label>21</label><mixed-citation>
Cai, W.-J. and Wang, Y.: The chemistry, fluxes, and sources of carbon dioxide in the estuarine waters of the Satilla and Altamaha Rivers, Georgia, Limnol. Oceanogr., 43, 657–668, <a href="https://doi.org/10.4319/lo.1998.43.4.0657" target="_blank">https://doi.org/10.4319/lo.1998.43.4.0657</a>, 1998.
</mixed-citation></ref-html>
<ref-html id="bib1.bib22"><label>22</label><mixed-citation>
Cole, J. J., Prairie, Y. T., Caraco, N. F., McDowell, W. H., Tranvik, L. J.,
Striegl, R. G., Duarte, C. M., Kortelainen, P., Downing, J. A., Middelburg, J. J., and Melack, J.: Plumbing the Global Carbon Cycle: Integrating Inland
Waters into the Terrestrial Carbon Budget, Ecosystems, 10, 172–185,
<a href="https://doi.org/10.1007/s10021-006-9013-8" target="_blank">https://doi.org/10.1007/s10021-006-9013-8</a>, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib23"><label>23</label><mixed-citation>
Culberson, C. H.: Calculation of the in situ pH of seawater, Limnol. Oceanogr., 25, 150–152, <a href="https://doi.org/10.4319/lo.1980.25.1.0150" target="_blank">https://doi.org/10.4319/lo.1980.25.1.0150</a>, 1980.
</mixed-citation></ref-html>
<ref-html id="bib1.bib24"><label>24</label><mixed-citation>
Desmit, X., Thieu, V., Billen, G., Campuzano, F., Dulière, V., Garnier,
J., Lassaletta, L., Ménesguen, A., Neves, R., Pinto, L., Silvestre, M.,
Sobrinho, J. L., and Lacroix, G.: Reducing marine eutrophication may require a paradigmatic change, Sci. Total Environ., 635, 1444–1466,
<a href="https://doi.org/10.1016/j.scitotenv.2018.04.181" target="_blank">https://doi.org/10.1016/j.scitotenv.2018.04.181</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib25"><label>25</label><mixed-citation>
Doney, S. C., Lindsay, K., Caldeira, K., Campin, J. M., Drange, H., Dutay, J. C., Follows, M., Gao, Y., Gnanadesikan, A., Gruber, N., Ishida, A., Joos, F., Madec, G., Maier-Reimer, E., Marshall, J. C., Matear, R. J., Monfray, P., Mouchet, A., Najjar, R., Orr, J. C., Plattner, G. K., Sarmiento, J., Schlitzer, R., Slater, R., Totterdell, I. J., Weirig, M. F., Yamanaka, Y., and Yool, A.: Evaluating global ocean carbon models: The importance of
realistic physics, Global Biogeochem. Cy., 18, GB3017, <a href="https://doi.org/10.1029/2003GB002150" target="_blank">https://doi.org/10.1029/2003GB002150</a>, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib26"><label>26</label><mixed-citation>
Drake, T. W., Raymond, P. A., and Spencer, R. G. M.: Terrestrial carbon inputs to inland waters: A current synthesis of estimates and uncertainty,
Limnol. Oceanogr. Lett., 3, 132–142, <a href="https://doi.org/10.1002/lol2.10055" target="_blank">https://doi.org/10.1002/lol2.10055</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib27"><label>27</label><mixed-citation>
Dubois, K. D., Lee, D., and Veizer, J.: Isotopic constraints on alkalinity,
dissolved organic carbon, and atmospheric carbon dioxide fluxes in the
Mississippi River, J. Geophys. Res.-Biogeo., 115, G02018, <a href="https://doi.org/10.1029/2009JG001102" target="_blank">https://doi.org/10.1029/2009JG001102</a>, 2010.
</mixed-citation></ref-html>
<ref-html id="bib1.bib28"><label>28</label><mixed-citation>
EEA: Copernicus Land Monitoring Service – Corine Land Cover (CLC), availablea at: <a href="https://land.copernicus.eu/pan-european/corine-land-cover/clc-2012" target="_blank"/> (last access: 3 May 2020), 2012.
</mixed-citation></ref-html>
<ref-html id="bib1.bib29"><label>29</label><mixed-citation>
Garnier, J. and Billen, G.: Ecological interactions in a shallow sand-pit lake (Lake Créteil, Parisian Basin, France): a modelling approach, Hydrobiologia, 275–276, 97–114, <a href="https://doi.org/10.1007/BF00026703" target="_blank">https://doi.org/10.1007/BF00026703</a>, 1994.
</mixed-citation></ref-html>
<ref-html id="bib1.bib30"><label>30</label><mixed-citation>
Garnier, J. and Billen, G.: Production vs. respiration in river systems: an
indicator of an “ecological status”, Sci. Total Environ., 375, 110–124, <a href="https://doi.org/10.1016/j.scitotenv.2006.12.006" target="_blank">https://doi.org/10.1016/j.scitotenv.2006.12.006</a>, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib31"><label>31</label><mixed-citation>
Garnier, J., Billen, G., and Coste, M.: Seasonal succession of diatoms and
Chlorophyceae in the drainage network of the Seine River: Observation and
modeling, Limnol. Oceanogr., 40, 750–765, <a href="https://doi.org/10.4319/lo.1995.40.4.0750" target="_blank">https://doi.org/10.4319/lo.1995.40.4.0750</a>,
1995.
</mixed-citation></ref-html>
<ref-html id="bib1.bib32"><label>32</label><mixed-citation>
Garnier, J., Leporcq, B., Sanchez, N., and Phillippon, X.: Biogeochemical mass-balances (C, N, P, Si) in three large reservoirs of the Seine Basin (France), Biogeochemistry, 47, 119–146, <a href="https://doi.org/10.1023/A:1006101318417" target="_blank">https://doi.org/10.1023/A:1006101318417</a>, 1999.
</mixed-citation></ref-html>
<ref-html id="bib1.bib33"><label>33</label><mixed-citation>
Garnier, J., Billen, G., Hannon, E., Fonbonne, S., Videnina, Y., and Soulie, M.: Modelling the Transfer and Retention of Nutrients in the Drainage Network of the Danube River, Estuar. Coast. Shelf Sci., 54, 285–308,
<a href="https://doi.org/10.1006/ecss.2000.0648" target="_blank">https://doi.org/10.1006/ecss.2000.0648</a>, 2002.
</mixed-citation></ref-html>
<ref-html id="bib1.bib34"><label>34</label><mixed-citation>
Garnier, J., Cébron, A., Tallec, G., Billen, G., Sebilo, M., and Martinez, A.: Nitrogen behaviour and nitrous oxide emission in the tidal Seine River estuary (France) as influenced by human activities in the upstream watershed, Biogeochemistry, 77, 305–326,
<a href="https://doi.org/10.1007/s10533-005-0544-4" target="_blank">https://doi.org/10.1007/s10533-005-0544-4</a>, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib35"><label>35</label><mixed-citation>
Garnier, J., Billen, G., and Cébron, A.: Modelling nitrogen transformations in the lower Seine river and estuary (France): Impact of
wastewater release on oxygenation and N<sub>2</sub>O emission, Hydrobiologia, 588, 291–302, <a href="https://doi.org/10.1007/s10750-007-0670-1" target="_blank">https://doi.org/10.1007/s10750-007-0670-1</a>, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib36"><label>36</label><mixed-citation>
Garnier, J., Billen, G., Vilain, G., Martinez, A., Silvestre, M., Mounier, E., and Toche, F.: Nitrous oxide (N<sub>2</sub>O) in the Seine river and basin: Observations and budgets, Agr. Ecosyst. Environ., 133, 223–233,
<a href="https://doi.org/10.1016/j.agee.2009.04.024" target="_blank">https://doi.org/10.1016/j.agee.2009.04.024</a>, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib37"><label>37</label><mixed-citation>
Guerrini, M.-C., Mouchel, J.-M., Meybeck, M., Penven, M. J., Hubert, G., and
Muxart, T.: Le bassin de la Seine: la confrontation du rural et de l'urbain, in La Seine en son bassin, in: Fonctionnement écologique d'un système fluvial anthropisé, edited by: Meybeck, M., de Marsily, G., and Fustec, E., Elsevier, Paris, Amsterdam, Lausanne, 29–73, 1998.
</mixed-citation></ref-html>
<ref-html id="bib1.bib38"><label>38</label><mixed-citation>
Gypens, N., Lancelot, C., and Borges, A. V.: Carbon dynamics and CO<sub>2</sub> air–sea exchanges in the eutrophied coastal waters of the Southern Bight of the North Sea: a modelling study, Biogeosciences, 1, 147–157, <a href="https://doi.org/10.5194/bg-1-147-2004" target="_blank">https://doi.org/10.5194/bg-1-147-2004</a>, 2004.
</mixed-citation></ref-html>
<ref-html id="bib1.bib39"><label>39</label><mixed-citation>
Gypens, N., Borges, A. V., and Lancelot, C.: Effect of eutrophication on air–sea CO<sub>2</sub> fluxes in the coastal Southern North Sea: A model study of the past 50 years, Global Change Biol., 15, 1040–1056,
<a href="https://doi.org/10.1111/j.1365-2486.2008.01773.x" target="_blank">https://doi.org/10.1111/j.1365-2486.2008.01773.x</a>, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib40"><label>40</label><mixed-citation>
Gypens, N., Lacroix, G., Lancelot, C., and Borges, A. V.: Seasonal and
inter-annual variability of air–sea CO<sub>2</sub> fluxes and seawater carbonate chemistry in the Southern North Sea, Prog. Oceanogr., 88, 59–77, <a href="https://doi.org/10.1016/j.pocean.2010.11.004" target="_blank">https://doi.org/10.1016/j.pocean.2010.11.004</a>, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib41"><label>41</label><mixed-citation>
Habets, F., Boone, A., Champeaux, J. L., Etchevers, P., Franchistéguy, L., Leblois, E., Ledoux, E., Le Moigne, P., Martin, E., Morel, S., Noilhan, J., Seguí, P. Q., Rousset-Regimbeau, F., and Viennot, P.: The SAFRAN-ISBA-MODCOU hydrometeorological model applied over France, J. Geophys. Res.-Atmos., 113, 1–18, <a href="https://doi.org/10.1029/2007JD008548" target="_blank">https://doi.org/10.1029/2007JD008548</a>, 2008.
</mixed-citation></ref-html>
<ref-html id="bib1.bib42"><label>42</label><mixed-citation>
Ho, D. T., Coffineau, N., Hickman, B., Chow, N., Koffman, T., and Schlosser, P.: Influence of current velocity and wind speed on air-water gas exchange in a mangrove estuary, Geophys. Res. Lett., 43, 3813–3821,
<a href="https://doi.org/10.1002/2016GL068727" target="_blank">https://doi.org/10.1002/2016GL068727</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib43"><label>43</label><mixed-citation>
Hotchkiss, E. R., Hall, R. O., Sponseller, R., Butman, D., Klaminder, J., Laudon, H., Rosvall, M., and Karlsson, J.: Sources and control of CO<sub>2</sub> emissions change with the size of streams and rivers, Nat. Geosci., 8, 696–699, <a href="https://doi.org/10.1038/ngeo2507" target="_blank">https://doi.org/10.1038/ngeo2507</a>, 2015.
</mixed-citation></ref-html>
<ref-html id="bib1.bib44"><label>44</label><mixed-citation>
INSEE: French National Institute of Statistics and Economic Studies,
Recensement de la population 2015, available at: <a href="https://www.insee.fr/fr/information/2008354" target="_blank"/> (last access: 3 May 2020), 2015.
</mixed-citation></ref-html>
<ref-html id="bib1.bib45"><label>45</label><mixed-citation>
Joos, F., Bruno, M., Fink, R., Siegenthaler, U., Stocker, T. F., Le Quéré, C., and Sarmiento, J. L.: An efficient and accurate
representation of complex oceanic and biospheric models of anthropogenic carbon uptake, Tellus B, 48, 397–417, <a href="https://doi.org/10.1034/j.1600-0889.1996.t01-2-00006.x" target="_blank">https://doi.org/10.1034/j.1600-0889.1996.t01-2-00006.x</a>, 1996.
</mixed-citation></ref-html>
<ref-html id="bib1.bib46"><label>46</label><mixed-citation>
Kempe, S.: Long-term records of CO<sub>2</sub> pressure fluctuations in fresh waters, Transp. carbon Miner. major world rivers, part 1, 91–332
available at: <a href="https://www.karstwanderweg.de/publika/gpi/52/116-120/index.htm" target="_blank"/> (last access: 3 May 2020), 1982.
</mixed-citation></ref-html>
<ref-html id="bib1.bib47"><label>47</label><mixed-citation>
Kempe, S.: Sinks of the anthropogenically enhanced carbon cycle in surface
fresh waters, J. Geophys. Res., 89, 4657, <a href="https://doi.org/10.1029/JD089iD03p04657" target="_blank">https://doi.org/10.1029/JD089iD03p04657</a>, 1984.
</mixed-citation></ref-html>
<ref-html id="bib1.bib48"><label>48</label><mixed-citation>
Lacarce, E., Le Bas, C., Cousin, J. L., Pesty, B., Toutain, B., Houston Durrant, T., and Montanarella, L.: Data management for monitoring forest soils in Europe for the Biosoil project, Soil Use Manage., 25, 57–65,
<a href="https://doi.org/10.1111/j.1475-2743.2009.00194.x" target="_blank">https://doi.org/10.1111/j.1475-2743.2009.00194.x</a>, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib49"><label>49</label><mixed-citation>
Laruelle, G. G., Marescaux, A., Le Gendre, R., Garnier, J., Rabouille, C., and Thieu, V.: Carbon dynamics along the Seine River network: Insight from a
coupled estuarine/river modeling approach, Front. Mar. Sci.,
<a href="https://doi.org/10.3389/fmars.2019.00216" target="_blank">https://doi.org/10.3389/fmars.2019.00216</a>, in press, 2019.
</mixed-citation></ref-html>
<ref-html id="bib1.bib50"><label>50</label><mixed-citation>
Lauerwald, R., Laruelle, G. G., Hartmann, J., Ciais, P., and Regnier, P. A. G.: Spatial patterns in CO<sub>2</sub> evasion from the global river network,
Global Biogeochem. Cy., 29, 534–554, <a href="https://doi.org/10.1002/2014GB004941" target="_blank">https://doi.org/10.1002/2014GB004941</a>, 2015.
</mixed-citation></ref-html>
<ref-html id="bib1.bib51"><label>51</label><mixed-citation>
Lauerwald, R., Regnier, P., Camino-serrano, M., Guenet, B., Guimberteau, M.,
Ducharne, A., Polcher, J., and Ciais, P.: ORCHILEAK (revision 3875): A new
model branch to simulate carbon transfers along the terrestrial-aquatic
continuum of the Amazon basin, Geosci. Model Dev., 10, 3821–3859,
<a href="https://doi.org/10.5194/gmd-10-3821-2017" target="_blank">https://doi.org/10.5194/gmd-10-3821-2017</a>, 2017.
</mixed-citation></ref-html>
<ref-html id="bib1.bib52"><label>52</label><mixed-citation>
Li, S., Lu, X. X., and Bush, R. T.: CO<sub>2</sub> partial pressure and CO<sub>2</sub> emission in the Lower Mekong River, J. Hydrol., 504, 40–56,
<a href="https://doi.org/10.1016/j.jhydrol.2013.09.024" target="_blank">https://doi.org/10.1016/j.jhydrol.2013.09.024</a>, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib53"><label>53</label><mixed-citation>
Mackenzie, F. T., De Carlo, E. H., and Lerman, A.: Coupled C, N, P, and O Biogeochemical Cycling at the Land-Ocean Interface, in: Biogeochemistry Vol. 5, Elsevier Inc., 317–342, <a href="https://doi.org/10.1016/B978-0-12-374711-2.00512-X" target="_blank">https://doi.org/10.1016/B978-0-12-374711-2.00512-X</a>, 2011.
</mixed-citation></ref-html>
<ref-html id="bib1.bib54"><label>54</label><mixed-citation>
Marescaux, A., Thieu, V., and Garnier, J.: Carbon dioxide, methane and nitrous oxide emissions from the human-impacted Seine watershed in France, Sci. Total Environ., 643, 247–259, <a href="https://doi.org/10.1016/j.scitotenv.2018.06.151" target="_blank">https://doi.org/10.1016/j.scitotenv.2018.06.151</a>,
2018a.
</mixed-citation></ref-html>
<ref-html id="bib1.bib55"><label>55</label><mixed-citation>
Marescaux, A., Thieu, V., Borges, A. V., and Garnier, J.: Seasonal and spatial variability of the partial pressure of carbon dioxide in the
human-impacted Seine River in France, Sci. Rep., 8, 13961,
<a href="https://doi.org/10.1038/s41598-018-32332-2" target="_blank">https://doi.org/10.1038/s41598-018-32332-2</a>, 2018b.
</mixed-citation></ref-html>
<ref-html id="bib1.bib56"><label>56</label><mixed-citation>
Marx, A., Dusek, J., Jankovec, J., Sanda, M., Vogel, T., van Geldern, R.,
Hartmann, J., and Barth, J. A. C.: A review of CO<sub>2</sub> and associated carbon dynamics in headwater streams: A global perspective, Rev. Geophys., 55, 560–585, <a href="https://doi.org/10.1002/2016RG000547" target="_blank">https://doi.org/10.1002/2016RG000547</a>, 2017.
</mixed-citation></ref-html>
<ref-html id="bib1.bib57"><label>57</label><mixed-citation>
Marx, A., Conrad, M., Aizinger, V., Prechtel, A., Van Geldern, R., and Barth,
J. A. C.: Groundwater data improve modelling of headwater stream CO<sub>2</sub> outgassing with a stable DIC isotope approach, Biogeosciences, 15, 3093–3106, <a href="https://doi.org/10.5194/bg-15-3093-2018" target="_blank">https://doi.org/10.5194/bg-15-3093-2018</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib58"><label>58</label><mixed-citation>
Meehl, G. A., Stocker, T. F., Collins, W. D., Friedlingstein, P. G. A. T.,
Gregory, J. M., Kitoh, A., Knutti, R., Murphy, J. M., N. A., Raper, S. C. B., Watterson, I. G. J. W. A., and Zhao, Z.-C.: Global Climate Projections, in: Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to Fourth Assessment Report of the Intergovernmental Panel on
Climate Change, edited by: Solomon, S., Qin, D., Manning, M., Chen, Z.,
Marquis, M., Averyt, K. B., Tignor, M., and Miller, H. L., Cambridge, UK and New York, NY, USA, p. 996, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib59"><label>59</label><mixed-citation>
Mégnien, C.: Synthèse géologique du bassin de Paris, edited by:
Mégnien, C., Édition du B. R. G. M., available at:
<a href="https://books.google.fr/books?id=x0w9bwAACAAJ" target="_blank"/> (last access: 3 May 2020), 1980.
</mixed-citation></ref-html>
<ref-html id="bib1.bib60"><label>60</label><mixed-citation>
Menon, M., Rousseva, S., Nikolaidis, N. P., van Gaans, P., Panagos, P., de Souza, D. M., Ragnarsdottir, K. V., Lair, G. J., Weng, L., Bloem, J., Kram, P., Novak, M., Davidsdottir, B., Gisladottir, G., Robinson, D. A., Reynolds, B., White, T., Lundin, L., Zhang, B., Duffy, C., Bernasconi, S. M., De Ruiter, P., Blum, W. E. H., and Banwart, S. A.: SoilTrEC: A global initiative on critical zone research and integration, Environ. Sci. Pollut. Res., 21, 3191–3195, <a href="https://doi.org/10.1007/s11356-013-2346-x" target="_blank">https://doi.org/10.1007/s11356-013-2346-x</a>, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib61"><label>61</label><mixed-citation>
Meybeck, M.: Riverine transport of atmospheric carbon: Sources, global
typology and budget, Water Air Soil Pollut., 70, 443–463, <a href="https://doi.org/10.1007/BF01105015" target="_blank">https://doi.org/10.1007/BF01105015</a>, 1993.
</mixed-citation></ref-html>
<ref-html id="bib1.bib62"><label>62</label><mixed-citation>
Millero, F. J.: The thermodynamics of the carbonate system in seawater, Geochim. Cosmochim. Ac., 43, 1651–1661, <a href="https://doi.org/10.1016/0016-7037(79)90184-4" target="_blank">https://doi.org/10.1016/0016-7037(79)90184-4</a>, 1979.
</mixed-citation></ref-html>
<ref-html id="bib1.bib63"><label>63</label><mixed-citation>
Minaudo, C., Curie, F., Jullian, Y., Gassama, N., and Moatar, F.: QUAL-NET, a
high temporal-resolution eutrophication model for large hydrographic networks, Biogeosciences, 15, 2251–2269, <a href="https://doi.org/10.5194/bg-15-2251-2018" target="_blank">https://doi.org/10.5194/bg-15-2251-2018</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib64"><label>64</label><mixed-citation>
Nakayama, T.: New perspective for eco-hydrology model to constrain missing
role of inland waters on boundless biogeochemical cycle in terrestrial–aquatic continuum, Ecohydrol. Hydrobiol., 16, 138–148,
<a href="https://doi.org/10.1016/j.ecohyd.2016.07.002" target="_blank">https://doi.org/10.1016/j.ecohyd.2016.07.002</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib65"><label>65</label><mixed-citation>
O'Connor, D. J. and Dobbins, W. E.: Mechanism of reaeration in natural streams, Trans. Am. Soc. Civ. Eng., 123, 641–684, 1958.
</mixed-citation></ref-html>
<ref-html id="bib1.bib66"><label>66</label><mixed-citation>
Öquist, M. G., Wallin, M., Seibert, J., Bishop, K., and Laudon, H.: Dissolved Inorganic Carbon Export Across the Soil/Stream Interface and Its Fate in a Boreal Headwater Stream, Environ. Sci. Technol., 43, 7364–7369, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib67"><label>67</label><mixed-citation>
Passy, P., Le Gendre, R., Garnier, J., Cugier, P., Callens, J., Paris, F.,
Billen, G., Riou, P., and Romero, E.: Eutrophication modelling chain for
improved management strategies to prevent algal blooms in the Bay of Seine,
Mar. Ecol. Prog. Ser., 543, 107–125, <a href="https://doi.org/10.3354/meps11533" target="_blank">https://doi.org/10.3354/meps11533</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib68"><label>68</label><mixed-citation>
Pelletier, G. J., Chapra, S. C., and Tao, H.: QUAL2Kw – A framework for
modeling water quality in streams and rivers using a genetic algorithm for
calibration, Environ. Model. Softw., 21, 419–425, <a href="https://doi.org/10.1016/j.envsoft.2005.07.002" target="_blank">https://doi.org/10.1016/j.envsoft.2005.07.002</a>, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib69"><label>69</label><mixed-citation>
Pierrot, D., Lewis, D. E., and Wallace, D. W. R.: MS Excel Program Developed
for CO<sub>2</sub> System Calculations, ORNL/CDIAC-105a, Carbon Dioxide Inf. Anal. Center, Oak Ridge Natl. Lab. US Dep. Energy, Oak Ridge, Tennessee,
<a href="https://doi.org/10.3334/CDIAC/otg.CO2SYS_XLS_CDIAC105a" target="_blank">https://doi.org/10.3334/CDIAC/otg.CO2SYS_XLS_CDIAC105a</a>, 2006.
</mixed-citation></ref-html>
<ref-html id="bib1.bib70"><label>70</label><mixed-citation>
Pomerol, C. and Feugueur, L. L.: Bassin de Paris: Ile de France, Pays de
Bray, Masson, Paris, available at:
<a href="https://books.google.fr/books?id=SAoeAQAAMAAJ" target="_blank"/> (last access: 3 May 2020), 1986.
</mixed-citation></ref-html>
<ref-html id="bib1.bib71"><label>71</label><mixed-citation>
Prairie, Y. T. and Cole, J. J.: Carbon, Unifying Currency, Encycl. Inl. Waters, 2, 743–746, <a href="https://doi.org/10.1016/B978-012370626-3.00107-1" target="_blank">https://doi.org/10.1016/B978-012370626-3.00107-1</a>, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib72"><label>72</label><mixed-citation>
QGIS Development Team: QGIS Geographic Information System 2.18, Open Source
Geospatial Found, available at: <a href="http://qgis.osgeo.org/" target="_blank"/> (last access: 3 May 2020), 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib73"><label>73</label><mixed-citation>
Quintana-Seguí, P., Le Moigne, P., Durand, Y., Martin, E., Habets, F.,
Baillon, M., Canellas, C., Franchisteguy, L., and Morel, S.: Analysis of
near-surface atmospheric variables: Validation of the SAFRAN analysis over
France, J. Appl. Meteorol. Clim., 47, 92–107, <a href="https://doi.org/10.1175/2007JAMC1636.1" target="_blank">https://doi.org/10.1175/2007JAMC1636.1</a>, 2008.
</mixed-citation></ref-html>
<ref-html id="bib1.bib74"><label>74</label><mixed-citation>
Raymond, P. A., Caraco, N. F., and Cole, J. J.: Carbon dioxide concentration
and atmospheric flux in the Hudson River, Estuaries, 20, 381–390,
<a href="https://doi.org/10.2307/1352351" target="_blank">https://doi.org/10.2307/1352351</a>, 1997.
</mixed-citation></ref-html>
<ref-html id="bib1.bib75"><label>75</label><mixed-citation>
Raymond, P. A., Zappa, C. J., Butman, D., Bott, T. L., Potter, J., Mulholland, P., Laursen, A. E., McDowell, W. H., and Newbold, D.: Scaling the
gas transfer velocity and hydraulic geometry in streams and small rivers,
Limnol. Oceanogr. Fluids Environ., 2, 41–53, <a href="https://doi.org/10.1215/21573689-1597669" target="_blank">https://doi.org/10.1215/21573689-1597669</a>, 2012.
</mixed-citation></ref-html>
<ref-html id="bib1.bib76"><label>76</label><mixed-citation>
Raymond, P. A., Hartmann, J., Lauerwald, R., Sobek, S., McDonald, C., Hoover, M., Butman, D., Striegl, R., Mayorga, E., Humborg, C., Kortelainen, P., Dürr, H., Meybeck, M., Ciais, P., and Guth, P.: Global carbon dioxide
emissions from inland waters, Nature, 503, 355–359, <a href="https://doi.org/10.1038/nature12760" target="_blank">https://doi.org/10.1038/nature12760</a>, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib77"><label>77</label><mixed-citation>
R Core team: R Core Team, R A Lang. Environ. Stat. Comput. R Found. Stat.
Comput., Vienna, Austria, 275–286, ISBN 3-900051-07-0, available at: <a href="http://www.R-project.org/" target="_blank"/> (last access: 3 May 2020), 2015.
</mixed-citation></ref-html>
<ref-html id="bib1.bib78"><label>78</label><mixed-citation>
Regnier, P., Friedlingstein, P., Ciais, P., Mackenzie, F. T., Gruber, N.,
Janssens, I. A., Laruelle, G. G., Lauerwald, R., Luyssaert, S., Andersson, A. J., Arndt, S., Arnosti, C., Borges, A. V., Dale, A. W., Gallego-Sala, A.,
Goddéris, Y., Goossens, N., Hartmann, J., Heinze, C., Ilyina, T., Joos,
F., LaRowe, D. E., Leifeld, J., Meysman, F. J. R., Munhoven, G., Raymond, P.
A., Spahni, R., Suntharalingam, P., and Thullner, M.: Anthropogenic perturbation of the carbon fluxes from land to ocean, Nat. Geosci., 6, 597–607, <a href="https://doi.org/10.1038/ngeo1830" target="_blank">https://doi.org/10.1038/ngeo1830</a>, 2013a.
</mixed-citation></ref-html>
<ref-html id="bib1.bib79"><label>79</label><mixed-citation>
Regnier, P., Arndt, S., Goossens, N., Volta, C., Laruelle, G. G., Lauerwald,
R., and Hartmann, J.: Modelling Estuarine Biogeochemical Dynamics: From the
Local to the Global Scale, Aquat. Geochem., 19, 591–626,
<a href="https://doi.org/10.1007/s10498-013-9218-3" target="_blank">https://doi.org/10.1007/s10498-013-9218-3</a>, 2013b.
</mixed-citation></ref-html>
<ref-html id="bib1.bib80"><label>80</label><mixed-citation>
Rocher, V. and Azimi, S.: Evolution de la qualité de la Seine en lien
avec les progrès de l'assainissement, Johanet, Paris, 2017.
</mixed-citation></ref-html>
<ref-html id="bib1.bib81"><label>81</label><mixed-citation>
Romero, E., Garnier, J., Lassaletta, L., Billen, G., Le Gendre, R., Riou, P.,
and Cugier, P.: Large-scale patterns of river inputs in southwestern Europe:
Seasonal and interannual variations and potential eutrophication effects at
the coastal zone, Biogeochemistry, 113, 481–505, <a href="https://doi.org/10.1007/s10533-012-9778-0" target="_blank">https://doi.org/10.1007/s10533-012-9778-0</a>, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib82"><label>82</label><mixed-citation>
Romero, E., Le Gendre, R., Garnier, J., Billen, G., Fisson, C., Silvestre, M., and Riou, P.: Long-term water quality in the lower Seine: Lessons learned
over 4 decades of monitoring, Environ. Sci. Policy, 58, 141–154,
<a href="https://doi.org/10.1016/j.envsci.2016.01.016" target="_blank">https://doi.org/10.1016/j.envsci.2016.01.016</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib83"><label>83</label><mixed-citation>
Sawakuchi, H. O., Neu, V., Ward, N. D., de Barros, M. L. C., Valerio, A. M.,
Gagne-Maynard, W., Cunha, A. C., Less, D. F. S., Diniz, J. E. M., Brito, D.
C., Krusche, A. V., and Richey, J. E.: Carbon Dioxide Emissions along the
Lower Amazon River, Front. Mar. Sci., 4, 1–12, <a href="https://doi.org/10.3389/fmars.2017.00076" target="_blank">https://doi.org/10.3389/fmars.2017.00076</a>, 2017.
</mixed-citation></ref-html>
<ref-html id="bib1.bib84"><label>84</label><mixed-citation>
Servais, P., Billen, G., and Hascoët, M. C.: Determination of the
biodegradable fraction of dissolved organic matter in waters, Water Res., 21, 445–450, <a href="https://doi.org/10.1016/0043-1354(87)90192-8" target="_blank">https://doi.org/10.1016/0043-1354(87)90192-8</a>, 1995.
</mixed-citation></ref-html>
<ref-html id="bib1.bib85"><label>85</label><mixed-citation>
Servais, P., Garnier, J., Demarteau, N., Brion, N., and Billen, G.: Supply of
organic matter and bacteria to aquatic ecosystems through waste water
effluents, Water Res., 33, 3521–3531, <a href="https://doi.org/10.1016/S0043-1354(99)00056-1" target="_blank">https://doi.org/10.1016/S0043-1354(99)00056-1</a>, 1999.
</mixed-citation></ref-html>
<ref-html id="bib1.bib86"><label>86</label><mixed-citation>
Servais, P., Billen, G., Goncalves, A., and Garcia-Armisen, T.: Modelling microbiological water quality in the Seine river drainage network: past, present and future situations, Hydrol. Earth Syst. Sci., 11, 1581–1592, <a href="https://doi.org/10.5194/hess-11-1581-2007" target="_blank">https://doi.org/10.5194/hess-11-1581-2007</a>, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib87"><label>87</label><mixed-citation>
Sferratore, A., Billen, G., Garnier, J., Smedberg, E., Humborg, C., and Rahm,
L.: Modelling nutrient fluxes from sub-arctic basins: Comparison of pristine
vs. dammed rivers, J. Mar. Syst., 73, 236–249, <a href="https://doi.org/10.1016/j.jmarsys.2007.10.012" target="_blank">https://doi.org/10.1016/j.jmarsys.2007.10.012</a>, 2008.
</mixed-citation></ref-html>
<ref-html id="bib1.bib88"><label>88</label><mixed-citation>
Smitz, J. S., Everbecq, E., Deliège, J.-F., Descy, J.-P., Wollast, R., and Vanderborght, J. P.: PEGASE, une méthodologie et un outil de simulation prévisionnelle pour la gestion de la qualité des eaux de
surface, Trib. l'eau, 588, 73–82, 1997.
</mixed-citation></ref-html>
<ref-html id="bib1.bib89"><label>89</label><mixed-citation>
Strahler, A. N.: Hypsometric (area-altitude) analysis of erosional topography, Bull. Geol. Soc. Am., 63, 1117–1142, <a href="https://doi.org/10.1130/0016-7606(1952)63" target="_blank">https://doi.org/10.1130/0016-7606(1952)63</a>, 1952.
</mixed-citation></ref-html>
<ref-html id="bib1.bib90"><label>90</label><mixed-citation>
Strahler, A. N.: Quantitative Analysis of Watershed Geomorphology, Geophys.
Union Trans., 38, 913–920, <a href="https://doi.org/10.1029/TR038i006p00913" target="_blank">https://doi.org/10.1029/TR038i006p00913</a>, 1957.
</mixed-citation></ref-html>
<ref-html id="bib1.bib91"><label>91</label><mixed-citation>
Tanaka, K., Kriegler, E., Bruckner, T., Georg, H., Knorr, W., and Raddatz, T.: Aggregated Carbon Cycle, Atmospheric Chemistry, and Climate Model (ACC2)
– description of the forward and inverse modes, Max Planck Institute for Meteorology, Hamburg, Germany, 1–188, 2007.
</mixed-citation></ref-html>
<ref-html id="bib1.bib92"><label>92</label><mixed-citation>
Telmer, K. and Veizer, J.: Carbon fluxes, <i>p</i>CO<sub>2</sub> and substrate weathering in a large northern river basin, Canada: Carbon isotope perspectives, Chem. Geol., 159, 61–86, <a href="https://doi.org/10.1016/S0009-2541(99)00034-0" target="_blank">https://doi.org/10.1016/S0009-2541(99)00034-0</a>, 1999.
</mixed-citation></ref-html>
<ref-html id="bib1.bib93"><label>93</label><mixed-citation>
Thieu, V., Billen, G., and Garnier, J.: Nutrient transfer in three contrasting NW European watersheds: the Seine, Somme, and Scheldt Rivers. A
comparative application of the Seneque/Riverstrahler model, Water Res., 43, 1740–1754, <a href="https://doi.org/10.1016/j.watres.2009.01.014" target="_blank">https://doi.org/10.1016/j.watres.2009.01.014</a>, 2009.
</mixed-citation></ref-html>
<ref-html id="bib1.bib94"><label>94</label><mixed-citation>
Tóth, G., Jones, A., and Montanarella, L. (Eds.): LUCAS Topsoil Survey. Methodology, data and results, in: EUR26102 – Scientific and Technical Research series, JRC Technical Reports, Publications Office of the European Union, Luxembourg, <a href="https://doi.org/10.2788/97922" target="_blank">https://doi.org/10.2788/97922</a>, 2013.
</mixed-citation></ref-html>
<ref-html id="bib1.bib95"><label>95</label><mixed-citation>
Vannote, R. L., Minshall, G. W., Cummins, K. W., Sedell, J. R., and Cushing, C. E.: The River Continuum Concept, Can. J. Fish. Aquat. Sci., 37, 130–137, <a href="https://doi.org/10.1139/f80-017" target="_blank">https://doi.org/10.1139/f80-017</a>, 1980.
</mixed-citation></ref-html>
<ref-html id="bib1.bib96"><label>96</label><mixed-citation>
Venkiteswaran, J. J., Schiff, S. L., and Wallin, M. B.: Large carbon dioxide
fluxes from headwater boreal and sub-boreal streams, PLoS One, 9, 22–25,
<a href="https://doi.org/10.1371/journal.pone.0101756" target="_blank">https://doi.org/10.1371/journal.pone.0101756</a>, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib97"><label>97</label><mixed-citation>
Vilain, G., Garnier, J., Passy, P., Silvestre, M., and Billen, G.: Budget of
N<sub>2</sub>O emissions at the watershed scale: Role of land cover and topography (the Orgeval basin, France), Biogeosciences, 9, 1085–1097,
<a href="https://doi.org/10.5194/bg-9-1085-2012" target="_blank">https://doi.org/10.5194/bg-9-1085-2012</a>, 2012.
</mixed-citation></ref-html>
<ref-html id="bib1.bib98"><label>98</label><mixed-citation>
Vilmin, L., Flipo, N., Escoffier, N., Rocher, V., and Groleau, A.: Carbon fate in a large temperate human-impacted river system: Focus on benthic
dynamics, Global Biogeochem. Cy., 30, 1086–1104, <a href="https://doi.org/10.1002/2015GB005271" target="_blank">https://doi.org/10.1002/2015GB005271</a>, 2016.
</mixed-citation></ref-html>
<ref-html id="bib1.bib99"><label>99</label><mixed-citation>
Vilmin, L., Flipo, N., Escoffier, N., and Groleau, A.: Estimation of the water quality of a large urbanized river as defined by the European WFD: what is the optimal sampling frequency?, Environ. Sci. Pollut. Res., 25, 23485–23501, <a href="https://doi.org/10.1007/s11356-016-7109-z" target="_blank">https://doi.org/10.1007/s11356-016-7109-z</a>, 2018.
</mixed-citation></ref-html>
<ref-html id="bib1.bib100"><label>100</label><mixed-citation>
Volta, C., Arndt, S., Savenije, H. H. G., Laruelle, G. G., and Regnier, P.:
C-GEM (v 1.0): A new, cost-efficient biogeochemical model for estuaries and
its application to a funnel-shaped system, Geosci. Model Dev., 7, 1271–1295, <a href="https://doi.org/10.5194/gmd-7-1271-2014" target="_blank">https://doi.org/10.5194/gmd-7-1271-2014</a>, 2014.
</mixed-citation></ref-html>
<ref-html id="bib1.bib101"><label>101</label><mixed-citation>
Whitehead, P. G., Williams, R. J., and Lewis, D. R.: Quality simulation along
river systems (QUASAR): Model theory and development, Sci. Total Environ., 194–195, 447–456, <a href="https://doi.org/10.1016/S0048-9697(96)05382-X" target="_blank">https://doi.org/10.1016/S0048-9697(96)05382-X</a>, 1997.
</mixed-citation></ref-html>
<ref-html id="bib1.bib102"><label>102</label><mixed-citation>
Xu, Y. J., Xu, Z., and Yang, R.: Rapid daily change in surface water <i>p</i>CO<sub>2</sub> and CO<sub>2</sub> evasion: A case study in a subtropical eutrophic lake in Southern USA, J. Hydrol., 570, 486–494, <a href="https://doi.org/10.1016/j.jhydrol.2019.01.016" target="_blank">https://doi.org/10.1016/j.jhydrol.2019.01.016</a>, 2019.
</mixed-citation></ref-html>
<ref-html id="bib1.bib103"><label>103</label><mixed-citation>
Yang, C., Telmer, K., and Veizer, J.: Chemical dynamics of the “St. Lawrence” riverine system: <i>δ</i>DH<sub>2</sub>O, <i>δ</i><sup>18</sup>OH<sub>2</sub>O, <i>δ</i><sup>13</sup>CDIC,
<i>δ</i><sup>34</sup>S sulfate, and dissolved <sup>87</sup>Sr∕<sup>86</sup>Sr, Geochim. Cosmochim. Ac., 60, 851–865, <a href="https://doi.org/10.1016/0016-7037(95)00445-9" target="_blank">https://doi.org/10.1016/0016-7037(95)00445-9</a>, 1996.
</mixed-citation></ref-html>
<ref-html id="bib1.bib104"><label>104</label><mixed-citation>
Yang, R., Xu, Z., Liu, S., and Xu, Y. J.: Daily <i>p</i>CO<sub>2</sub> and CO<sub>2</sub> flux variations in a subtropical mesotrophic shallow lake, Water Res., 153, 29–38, <a href="https://doi.org/10.1016/j.watres.2019.01.012" target="_blank">https://doi.org/10.1016/j.watres.2019.01.012</a>, 2019.
</mixed-citation></ref-html>
<ref-html id="bib1.bib105"><label>105</label><mixed-citation>
Zeebe, R. and Wolf-Gladrow, D.: CO<sub>2</sub> in Seawater-Equilibrium, Kinetics, Isotopes, in: Elsevier Oceanography Book Series 65, Elsevier, Amsterdam, 346&thinsp;pp., <a href="https://doi.org/10.1016/S0422-9894(01)80002-7" target="_blank">https://doi.org/10.1016/S0422-9894(01)80002-7</a>, 2001.
</mixed-citation></ref-html>--></article>
