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Comparison of real evapotranspiration measured by weighing lysimeters with simulations based on the Penman formula and a crop growth model


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Budagovskyi, A.I., Novák, V., 2011a. Theory of evapotranspiration: 1.Transpiration and its quantitative description. J. Hydrol. Hydromech., 59, 1, 3-23.10.2478/v10098-011-0001-0Search in Google Scholar

Budagovskyi, A.I., Novák, V., 2011b. Theory of evapotranspiration: 2. Soil and intercepted water evaporation. J. Hydrol. Hydromech., 59, 2, 73-84.10.2478/v10098-011-0006-8Search in Google Scholar

Castellvi, F., Snyder, R.L., 2010. A comparison between latent heat fluxes over grass using a weighing lysimeter and surface renewal analysis. J. Hydrol., 381, 213-220.10.1016/j.jhydrol.2009.11.043Search in Google Scholar

Crush, J.R., Waller, J.E., Care, D.A., 2005. Root distribution and nitrate interception in eleven temperate forage grasses. Grass Forage Sci., 60, 385-392.10.1111/j.1365-2494.2005.00488.xSearch in Google Scholar

Diestel, H., Zenker, T., Schwartengraeber, R., Schmidt, M., 2007. The Lysimeter Station at Berlin-Dahlem. In: Kersebaum, K.C., Hecker, J.M., Mirschel, W., Wegehenkel, M. (Eds.): Modelling Water and Nutrient Dynamics in Soil Crop Systems. Springer, 259-267.10.1007/978-1-4020-4479-3_18Search in Google Scholar

Durner, W., 2000. SHYPFIT 0.22 Users manual. Research Report 95.1, Department of Hydrology, University of Bayreuth, Bayreuth.Search in Google Scholar

Faharani, H.J., Howell, T.A., Shuttleworth, W.J., Bausch, W.C., 2007. Evapotranspiration; Progress in measurement and modelling in agriculture. T. ASABE, 50(5), 1627-1638.10.13031/2013.23965Search in Google Scholar

FAO-Unesco, 1988. Soil Map of the World. Food and Agriculture Organization of the United Nations, Rom., 119 pp.Search in Google Scholar

Ficklin, D.L., Luedelinga, E., Zhang, M., 2010. Sensitivity of groundwater recharge under irrigated agriculture to changes in climate, CO2 concentrations and canopy structure. Agr. Water Manage., 97, 1039-1050.10.1016/j.agwat.2010.02.009Search in Google Scholar

Herbst, M., Fialkiewicz, W., Chen, T., Pütz, T., Thiery, D., Mouvet, C., Vachaud, G., Vereecken, H., 2005. Intercomparison of flow and transport models applied to vertical drainage in cropped lysimeters. VZJ, 4, 240-254.10.2136/vzj2004.0070Search in Google Scholar

Jansson, P.E., Karlberg, L., 2004. Coupled heat and mass transfer model for soil-plant-atmosphere systems. ftp://www.lwr.kth.se/CoupModel/CoupModel.pdf. Royal Institute of Technology, Dept. of Civil and Environmental Engineering, Stockholm.Search in Google Scholar

Jiang, J., Zhang, Y., Wegehenkel, M., Yu, Q., Xia, J., 2008. Estimation of soil water contents and evapotranspiration from irrigated cropland on the North China Plain. J. Plant Nutr. Soil Sc., 171, 751-761.10.1002/jpln.200625179Search in Google Scholar

Koitzsch, R., Günther, R., 1990. Simulation model for the calculation of continuous time series of evapotranspiration and soil moisture of agricultural fields. Arch. Acker Pfl. Boden., 24, 717-725. (In German.)Search in Google Scholar

Kroes, J.G., van Dam, J.C. (Eds.), 2003. Reference Manual SWAP version 3.0.4. Wageningen, Alterra, Green World Research, Alterra-Report, 773, Wageningen, The Netherlands, 211 pp.Search in Google Scholar

Legates, D.R., McCabe, G.J., 1999. Evaluating the use of “goodness of fit” measures in hydrologic and hydroclimatic model evaluation. Water Resources Research, 35, 233-241.10.1029/1998WR900018Search in Google Scholar

Loos, C., Gayler, S., Priesack, S., 2007. Assessment of water balance simulations for large scale weighing lysimeters. J. Hydrol., 335(3-4), 259-270.10.1016/j.jhydrol.2006.11.017Search in Google Scholar

Luo, Y., Sophocleous, M., 2010. Seasonal groundwater contribution to crop-water use assessed with lysimeter observations and model simulations. J. Hydrol., 389, 325-335.10.1016/j.jhydrol.2010.06.011Search in Google Scholar

Moriasi, D.N., Arnold, J.G., van Liew, M.W., Bingner, R.L., Harmel, R.D., Veith, T.L., 2007. Model Evaluation Guidelines for Systematic Quantification of Accuracy in Watershed Simulations. T. ASABE, 50(3), 885-900.10.13031/2013.23153Search in Google Scholar

Mualem,Y., 1976. A new model for predicting the hydraulic conductivity of unsaturated porous media. Water Resour. Res., 12(3), 513-522.10.1029/WR012i003p00513Search in Google Scholar

Nash, J.E., Sutcliffe, L.V. 1970. Riverflow forecasting through conceptual model. J. Hydrol., 273, 282-290.Search in Google Scholar

Press, W.H., Teukolksky, S.A., Vetterling, W.T., Flannery, B.P., 1992. Numerical Recipes in Fortran - The art of scientific computing. Cambridge University Press, 934 pp.Search in Google Scholar

Rana, G., Katerij, N., 2000. Measurement and estimation of actual evapotranspiration in the field under Mediterranean Climate: a review. Eur. J. Agron., 13, 125-153.10.1016/S1161-0301(00)00070-8Search in Google Scholar

Soylu, M.E., Istanbulluoglu, E., Lenters, J.D., Wang, T., 2011. Quantifying the impact of groundwater depth on evapotranspiration in a semi-arid grassland region. Hydrol. Earth Syst. Sc., 15, 787-806.10.5194/hess-15-787-2011Search in Google Scholar

Stenitzer, E., Diestel, H., Zenker, Th., Schwartengräber, R. 2007. Assessment of capillary rise from shallow groundwater by the simulation model SIMWASER using either estimated pedotransfer functions or measured hydraulic properties. Water Resour. Manag., 21, 1567-1584.Search in Google Scholar

Supit, I., Hooijer, A.A., van Diepen, C.A., 1994. System Description of the Wofost 6.0 Crop Simulation Model Implemented in CGMS, Vol. 1: Theory and Algorithms. Joint Research Centre, Commission of the European Communities, EUR 15956 EN, Luxembourg, 146 pp.Search in Google Scholar

Ten Berge, H.F.M, Metselaar, K., Jansen, M.J.W, San Agustin, E.M., Woodhead, T., 1995. The Sawah riceland hydrology model. Water Resour. Res., 31, 2721-2731.10.1029/95WR02330Search in Google Scholar

Van Genuchten, M., 1980. A closed form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Sci. Soc. Am. J., 44, 892-898.10.2136/sssaj1980.03615995004400050002xSearch in Google Scholar

Van Ittersum, M.K., Leffelaar, P.A., van Keulen, H., Kropff, M.J., Bastiaans, L., Goudriaan, J., 2003. On approaches and applications of the Wageningen crop models. Eur. J. Agron., 18, 201-234.10.1016/S1161-0301(02)00106-5Search in Google Scholar

Wegehenkel, M., 2005. Validation of a soil water balance model using soil water content and pressure head data. Hydrol. Process., 19, 1139-1164.10.1002/hyp.5557Search in Google Scholar

Wegehenkel, M., Zhang, Y., Zenker, Th., Diestel, H., 2008. The use of lysimeter data for the test of two soil water balance models: A case study. J. Plant Nutr. Soil Sc., 171, 762-776.10.1002/jpln.200700244Search in Google Scholar

Willmott, C.J., 1982. Some comments on the evaluation of model performance. B. Am. Meteorol. Soc., 64, 1309-1313.10.1175/1520-0477(1982)063<1309:SCOTEO>2.0.CO;2Search in Google Scholar

Wohlfahrt, G., Ischick, Chr., Thalinger, B., Hörtnagl, L., Obojes, N., Hammerle, A., 2010. Insights from independent evapotranspiration estimates for closing the energy balance: A grassland case study. VZJ, 9, 1025-1033.10.2136/vzj2009.0158Search in Google Scholar

Zenker, T., 2003. Grass reference evapotranspiration and bulk surface resistance. An analysis of the Penman-Monteith approach using lysimeter data obtained from a station located in Berlin. PhD thesis. Technical University of Berlin, pp. 147. (In German with English abstract.) http://edocs.tuberlin.de/diss/2003/zenker_thomas.pdf Search in Google Scholar

ISSN:
0042-790X
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other