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Canopy temperature versus soil water pressure head for the prediction of crop water stress

机译:冠层温度与土壤水压头的关系预测作物水分胁迫

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Plant water stress is linked to both above- and below-surface parameters; with above-surface parameters being generally easier to measure. Models utilizing above-surface parameters, such as canopy temperature to identify plant water stress, frequently employ the crop water stress index (CWSI). Alternatively, the regular usage of the transpiration reduction function (FRF), as proposed by Feddes in the 1970s, requires more difficult to measure below-surface parameters such as soil water pressure head. In order to assess the agreement between these models, we experimentally compared plant water stress predicted by the CWSI and FRF using Common Bean grown in Brazil under full and deficit irrigation; the sensitivity of the models to the key parameters, water stressed baseline and limiting soil water pressure head, was also evaluated. The simple equation 1 - CWSI = Tr provided a good fit when relating CWSI to the relative transpiration Tr as predicted by the Feddes model. We show that above ground measurements that are combined within the CWSI are just as effective at predicting plant water stress as soil-based factors like soil water pressure head. The models show high sensitivity to variations in key parameters, implying significant differences will result in the identification of the onset of plant water stress; with sensitivity highest for the CWSI under dry conditions
机译:植物水分胁迫与地上和地下参数都相关;通常更容易测量地表参数。利用诸如冠层温度之类的地表参数来识别植物水分胁迫的模型经常采用作物水分胁迫指数(CWSI)。另外,如Feddes在1970年代提出的那样,蒸腾减少函数(FRF)的常规使用要求更难测量地下参数,例如土壤水压头。为了评估这些模型之间的一致性,我们通过实验比较了CWSI和FRF预测的植物水分胁迫,其中使用了巴西在完全灌溉和亏缺灌溉条件下种植的普通豆;还评估了模型对关键参数(水胁迫基线和极限土壤水压头)的敏感性。当将CWSI与Feddes模型所预测的相对蒸腾Tr相关时,简单方程式1-CWSI = Tr提供了很好的拟合。我们显示,在CWSI中组合的地上测量与预测基于土壤的因素(如土壤水压头)一样有效地预测植物水分胁迫。该模型显示出对关键参数变化的高度敏感性,这意味着明显的差异将导致植物水分胁迫的发作的识别。在干燥条件下对CWSI的灵敏度最高

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