Modified Penman-Monteith equation for monitoring evapotranspiration of wheat crop: Relationship between the surface resistance and remotely sensed stress index

被引:33
|
作者
Amazirh, Abdelhakim [1 ]
Er-Raki, Salah [1 ]
Chehbouni, Abdelghani [2 ]
Rivalland, Vincent [2 ]
Diarra, Alhousseine [3 ]
Khabba, Said [3 ]
Ezzahar, Jamal [4 ]
Merlin, Olivier [2 ,3 ]
机构
[1] Univ Cadi Ayyad, Fac Sci & Tech, Dept Phys Appl, LP2M2E, Marrakech, Morocco
[2] Univ Toulouse, CESBIO, CNRS, CNES,IRD,UPS, Toulouse, France
[3] Univ Cadi Ayyad, Fac Sci Semlalia, Dept Phys, LMME, Marrakech, Morocco
[4] Univ Cadi Ayyad, Ecole Natl Sci Appl, ENSA, MTI, Safi, Morocco
基金
欧盟地平线“2020”;
关键词
Bulk surface resistance; Evapotranspiration; Crop water stress; Landsat; Penman-Monteith; Surface temperature; LARGE-APERTURE SCINTILLOMETER; ENERGY-BALANCE MODEL; EDDY COVARIANCE; AVAILABLE ENERGY; SEMIARID REGION; OLIVE ORCHARDS; CITRUS ORCHARD; FAO-56; MODEL; SAP FLOW; TEMPERATURE;
D O I
10.1016/j.biosystemseng.2017.09.015
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Evapotranspiration (ET) plays an essential role for detecting plant water status, estimating crop water needs and optimising irrigation management. Accurate estimates of ET at field scale are therefore critical. The present paper investigates a remote sensing and modelling coupled approach for monitoring actual ET of irrigated wheat crops in the semi-arid region of Tensift Al Haouz (Morocco). The ET modelling is based on a modified Penman-Monteith equation obtained by introducing a simple empirical relationship between surface resistance (r(c)) and a stress index (SI). SI is estimated from Landsat-derived land surface temperature (LST) combined with the LST endmembers (in wet and dry conditions) simulated by a surface energy balance model driven by meteorological forcing and Landsat-derived fractional vegetation cover. The proposed model is first calibrated using eddy covariance measurements of ET during one growing season (2015-2016) over an experimental flood irrigated wheat field located within the irrigated perimeter named R3. It is then validated during the same growing season over another drip-irrigated wheat field located in the same perimeter. Next, the proposed ET model is implemented over a 10 x 10 km(2) area in R3 using a time series of Landsat-7/8 reflectance and LST data. The comparison between modelled and measured ET fluxes indicates that the model works well. The Root Mean Square Error (RMSE) values over drip and flood sites were 13 and 12 W m(-2), respectively. The proposed approach has a great potential for detecting crop water stress and estimating crop water requirements over large areas along the agricultural season. (C) 2017 IAgrE. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:68 / 84
页数:17
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