Articles | Volume 18, issue 6
https://doi.org/10.5194/hess-18-2049-2014
https://doi.org/10.5194/hess-18-2049-2014
Research article
 | 
03 Jun 2014
Research article |  | 03 Jun 2014

Improving the complementary methods to estimate evapotranspiration under diverse climatic and physical conditions

F. M. Anayah and J. J. Kaluarachchi

Related subject area

Subject: Catchment hydrology | Techniques and Approaches: Modelling approaches
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Cited articles

Ali, M. F. and Mawdsley, J. A.: Comparison of two recent models for estimating actual ET using only regularly recorded data, J. Hydrol., 93, 257–276, https://doi.org/10.1016/0022-1694(87)90099-0, 1987.
Allen, R. G., Pereira, L. S., Raes, D., and Smith, M. (Eds.): Crop Evapotranspiration: Guidelines for Computing Crop Water Requirements, FAO Irrig. Drain., Paper No. 56, Food and Agr. Orgn. of the United Nations, Rome, Italy, 1998.
Allen, R. G., Walter, I. A., Elliot, R., Howell, T., Itenfisu, D., and Jensen, M. (Eds.): The ASCE Standardized Reference Evapotranspiration Equation, Environment and Water Resources Institute of the Am. Soc. Civil Eng. (ASCE), Task Committee on Standardization of Reference Evapotranspiration, Final Rep., ASCE, Reston, VA, USA, 2005.
Anayah, F. M.: Improving complementary methods to predict evapotranspiration for data deficit conditions and global applications under climate change, Ph.D. dissertation, Utah State University, Logan, Utah, USA, 186 pp., 2012.
Anayah, F. M., Kaluarachchi, J. J., Pavelic, P., and Smakhtin, V.: Predicting groundwater recharge in Ghana by estimating evapotranspiration, Water Int., 38, 408–432, https://doi.org/10.1080/02508060.2013.821642, 2013.