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分时段修正双源模型在西北干旱区玉米蒸散量模拟中的应用

吴林 闵雷雷 沈彦俊 周晓旭 刘峰贵

中国生态农业学报2017,Vol.25Issue(5):634-646,13.
中国生态农业学报2017,Vol.25Issue(5):634-646,13.DOI:10.13930/j.cnki.cjea.160839

分时段修正双源模型在西北干旱区玉米蒸散量模拟中的应用

Simulation of maize evapotranspiration at different growth stages using revised dual-layered model in arid Northwest China

吴林 1闵雷雷 2沈彦俊 2周晓旭 2刘峰贵2

作者信息

  • 1. 青海师范大学生命与地理科学学院 西宁 810000
  • 2. 中国科学院遗传与发育生物学研究所农业资源研究中心/中国科学院农业水资源重点实验室 石家庄 050022
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摘要

Abstract

Evapotranspiration (ET) is composed of two separate processes — water loss to the atmosphere from soil surface by evaporation (E) and water loss to the atmosphere from plant canopy via transpiration (T). ET plays a key role in energy and water balance in agricultural system and is also a critical process in terrestrial hydrological cycle. Accurate estimation of ET is significant for improving water use efficiency and optimizing regional water use, particularly in arid and semi-arid regions. Although ET models have been an important tool in understanding the regulation of ET in ecological, agricultural and envi-ronmental sciences, the accuracy of the models is limited by aerodynamic and canopy resistance. Numerous models have been developed to integrate aerodynamic and canopy resistances [e.g., Penman-Monteith (P-M) model] in simulating the processes of response of ET, but many studies have suggested that the P-M model could produce large errors under partial or sparse canopy conditions because it treated plant canopy and soil surface as a single entity. Next, the dual-layered Shuttle-worth-Wallace (S-W) model was developed to estimate ET under different conditions. In this model, the crop ET is divided into two components — latent heat flux from crop and that from soil. It has been tested by various surface conditions and widely used because of its good performance. In this study (which used maize data of three eddy covariance observations for the period from May through September 2012 in Heihe River Basin, an arid area in Northwestern China), two canopy resis-tance models coupled for maize. Two S-W models were coupled with canopy resistance models of maize taking or non-taking into account the effect of atmospheric CO2. Then the whole maize growth period was divided into three stages, early, middle and late growth stages. Then maize ET on half hour scale was simulated using the two S-W models. The performances of the two S-W models were validated for three different growth stages using eddy covariance field-measured data. The results showed that simulated maize ET by the S-W model (which took into account the effect of atmospheric CO2 at every growth stage of three different places) best agreed with field-measured eddy covariance data. Sensitivity analysis of the revised S-W model (taking into account the effect of atmospheric CO2) showed that maize ET was more sensitive to canopy resistance (rsc) and aerodynamic resistance from canopy to reference surface height (raa) at different growth stages. Therefore, it is very nec-essary to determine resistance parameters at different growth stages taking into account the effect of atmospheric CO2when calculating maize ET using the revised S-W model.

关键词

Shuttleworth-Wallace模型/蒸散发/大气CO2浓度/阻力参数/玉米

Key words

Shuttleworth-Wallace (S-W) model/Evapotranspiration/Atmospheric CO2 concentration/Resistance parameter/Maize

分类

农业科学

引用本文复制引用

吴林,闵雷雷,沈彦俊,周晓旭,刘峰贵..分时段修正双源模型在西北干旱区玉米蒸散量模拟中的应用[J].中国生态农业学报,2017,25(5):634-646,13.

基金项目

国家自然科学基金项目(91425302, 31400375)资助 This study was supported by the National Natural Science Foundation of China (91425302, 31400375). (91425302, 31400375)

中国生态农业学报

OA北大核心CSCDCSTPCD

2096-6237

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