journal article May 01, 2016

Global investigation of impacts of PET methods on simulating crop-water relations for maize

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References
58
[1]
Allen, R.G., Pereira, L.S., Raes, D., Smith, M., 1998. Crop evapotranspiration ​– Guidelines for computing crop water requirements. FAO Irrigation and drainage paper 56. FAO, Rome.
[2]
Anothai "Evaluation of two evapotranspiration approaches simulated with the CSM–CERES–Maize model under different irrigation strategies and the impact on maize growth, development and soil moisture content for semi-arid conditions" Agric. For. Meteorol. (2013) 10.1016/j.agrformet.2013.03.001
[3]
Baier "Estimation of latent evaporation from simple weather observations" Can. J. Plant Sci. (1965) 10.4141/cjps65-051
[4]
Balkovič "Pan-European crop modelling with EPIC: implementation, up-scaling and regional crop yield validation" Agrofor. Syst. (2013) 10.1016/j.agsy.2013.05.008
[5]
Balkovič "Global wheat production potentials and management flexibility under the representative concentration pathways" Global Planet. C (2014) 10.1016/j.gloplacha.2014.08.010
[6]
Bassu "How do various maize crop models vary in their responses to climate change factors?" Global Change Biol. (2014) 10.1111/gcb.12520
[7]
Batjes, N.H., 2006. ISRIC-WISE derived soil properties on a 5 by 5 arc-minutes global grid (version 1.1), ISRIC—World Soil Infromation, Wageningen.
[8]
Benson "Nitrogen leaching sensitivity to evapotranspiration and soil water storage estimates in EPIC" J. Soil Water Conserv. (1992) 10.1080/00224561.1992.12456725
[9]
Chapagain, A.K., Hoekstra, A.Y., 2004. Water footprints of nations. Research Report Series No. 16. UNESCO-IHE, Delft.
[10]
Doorenbos "Guidelines for predicting crop water requirements" FAO Irrig. Drain. Pap. (1977)
[11]
Elliott "Constraints and potentials of future irrigation water availability on agricultural production under climate change" Proc. Natl. Acad. Sci. U. S. A. (2014) 10.1073/pnas.1222474110
[12]
Elliott "The global gridded crop model intercomparison: data and modeling protocols for phase 1 (v1.0)" Geosci. Model Dev. (2015) 10.5194/gmd-8-261-2015
[13]
FAO (1995)
[14]
FAO (2007)
[15]
Internal and external green-blue agricultural water footprints of nations, and related water and land savings through trade

M. Fader, D. Gerten, M. Thammer et al.

Hydrology and Earth System Sciences 2011 10.5194/hess-15-1641-2011
[16]
Folberth "Regionalization of a large-scale crop growth model for sub-Saharan Africa: model setup, evaluation, and estimation of maize yields" Agric. Ecosyst. Environ. (2012) 10.1016/j.agee.2012.01.026
[17]
Folberth "Modeling maize yield responses to improvement in nutrient, water and cultivar inputs in sub-Saharan Africa" Agric. Syst. (2013) 10.1016/j.agsy.2013.04.002
[18]
Folberth "Effects of ecological and conventional agricultural intensification practices on maize yields in sub-Saharan Africa under potential climate change" Environ. Res. Lett. (2014) 10.1088/1748-9326/9/4/044004
[19]
Gassman, P.W. et al., 2005. Historical development and applications of the EPIC and APEX Models Iowa State University, Center for Agricultural and Rural Development. Working Paper 05-WP 397, Ames, Iowa.
[20]
History and Evaluation of Hargreaves Evapotranspiration Equation

George H. Hargreaves, Richard G. Allen

Journal of Irrigation and Drainage Engineering 2003 10.1061/(asce)0733-9437(2003)129:1(53)
[21]
Reference Crop Evapotranspiration from Temperature

George H. Hargreaves, Zohrab A. Samani

Applied Engineering in Agriculture 1985 10.13031/2013.26773
[22]
A trend-preserving bias correction – the ISI-MIP approach

S. Hempel, K. Frieler, L. Warszawski et al.

Earth System Dynamics 2013 10.5194/esd-4-219-2013
[23]
Jensen, M.E., Burman, R.D., Allen, R.G., 1990. Evapotranspiration and Irrigation Water Requirements. ASCE Manual of Practice No. 70. ASCE, New York.
[24]
The DSSAT cropping system model

J.W Jones, G Hoogenboom, C.H Porter et al.

European Journal of Agronomy 2003 10.1016/s1161-0301(02)00107-7
[25]
Kiniry "A general, process-oriented model for two competing plant species" Trans. ASABE (1992) 10.13031/2013.28665
[26]
Knisel, W.G., 1980. CREAMS: a field-scale model for chemicals, runoff and erosion from agricultural management systems. Conservation Research Report No. 26, Washington D.C.
[27]
Leonard "GLEAMS: groundwater loading effects of agricultural management systems" Trans. ASABE (1987) 10.13031/2013.30578
[28]
GEPIC – modelling wheat yield and crop water productivity with high resolution on a global scale

Junguo Liu, Jimmy R. Williams, Alexander J.B. Zehnder et al.

Agricultural Systems 2007 10.1016/j.agsy.2006.11.019
[29]
Liu "Global consumptive water use for crop production: the importance of green water and virtual water" Water Resour. Res. (2009) 10.1029/2007wr006051
[30]
Liu "A global and spatially explicit assessment of climate change impacts on crop production and consumptive water use" PLoS One (2013) 10.1371/journal.pone.0057750
[31]
Liu "A GIS-based tool for modelling large-scale crop-water relations" Environ. Modell. Software (2009) 10.1016/j.envsoft.2008.08.004
[32]
The green, blue and grey water footprint of crops and derived crop products

M. M. Mekonnen, A. Y. Hoekstra

Hydrology and Earth System Sciences 2011 10.5194/hess-15-1577-2011
[33]
Mitchell "An improved method of constructing a database of monthly climate observations and associated high-resolution grids" Int. J. Climatol. (2005) 10.1002/joc.1181
[34]
Monteith "Evaporation and environment" Symp. Soc. Exp. Biol. (1965)
[35]
Simulation of winter wheat yield and its variability in different climates of Europe: A comparison of eight crop growth models

Taru Palosuo, Kurt Christian Kersebaum, Carlos Angulo et al.

European Journal of Agronomy 2011 10.1016/j.eja.2011.05.001
[36]
Parton "A general model for soil organic matter dynamics: sensitivity to litter chemistry, texture and management" Soil Sci. Soc. Am. Inc., Minneap. Minn. U. S. A. (1994)
[37]
Updated world map of the Köppen-Geiger climate classification

M. C. Peel, B. L. Finlayson, T. A. McMahon

Hydrology and Earth System Sciences 2007 10.5194/hess-11-1633-2007
[38]
Natural evaporation from open water, bare soil and grass

Howard Latimer Penman

Proceedings of the Royal Society of London. Series... 1948 10.1098/rspa.1948.0037
[39]
Portmann "MIRCA2000 ​– Global monthly irrigated and rainfed crop areas around the year 2000: a new high-resolution data set for agricultural and hydrological modeling" Global Biogeochem. Cycles (2010)
[40]
On the Assessment of Surface Heat Flux and Evaporation Using Large-Scale Parameters

C. H. B. PRIESTLEY, R. J. Taylor

Monthly Weather Review 1972 10.1175/1520-0493(1972)100<0081:otaosh>2.3.co;2
[41]
Ritchie "Model for predicting evaporation from a row crop with incomplete cover" Water Resour. Res. (1972) 10.1029/wr008i005p01204
[42]
Roloff "Estimating spring wheat yield variability with EPIC" Can. J. Soil Sci. (1998) 10.4141/s97-063
[43]
Rosenzweig "The agricultural model intercomparison and improvement project (AgMIP): protocols and pilot studies" Agric. For. Meteorol. (2013) 10.1016/j.agrformet.2012.09.011
[44]
Assessing agricultural risks of climate change in the 21st century in a global gridded crop model intercomparison

Cynthia Rosenzweig, Joshua Elliott, Delphine Deryng et al.

Proceedings of the National Academy of Sciences 2014 10.1073/pnas.1222463110
[45]
Sacks "Crop planting dates: an analysis of global patterns" Global Change Biol. (2010)
[46]
Saghravani "Comparison of daily and monthly results of three evapotranspiration models in tropical zone: a case study" Am. J. Environ. Sci. (2009) 10.3844/ajessp.2009.698.705
[47]
Sau "Testing and improving evapotranspiration and soil water balance of the DSSAT crop models" Agron. J. (2004) 10.2134/agronj2004.1243
[48]
Shiklomanov (2003)
[50]
Tan "Global estimation of crop productivity and the impacts of global warming by GIS and EPIC integration" Ecol. Modell. (2003) 10.1016/s0304-3800(03)00146-7

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Published
May 01, 2016
Vol/Issue
221
Pages
164-175
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Hong Yang, Christian Folberth, Xiuying Wang, et al. (2016). Global investigation of impacts of PET methods on simulating crop-water relations for maize. Agricultural and Forest Meteorology, 221, 164-175. https://doi.org/10.1016/j.agrformet.2016.02.017