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A global analysis of soil moisture derived from satellite observations and a land surface model

机译:卫星观测和陆地表面模型对土壤水分的全球分析

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Soil moisture availability is important in regulating photosynthesis and controlling land surface-climate feedbacks at both the local and global scale. Recently, global remote-sensing datasets for soil moisture have become available. In this paper we assess the possibility of using remotely sensed soil moisture - AMSR-E (LPRM) - to similate soil moisture dynamics of the process-based vegetation model ORCHIDEE by evaluating the correspondence between these two products using both correlation and autocorrelation analyses. We find that the soil moisture product of AMSR-E (LPRM) and the simulated soil moisture in ORCHIDEE correlate well in space and time, in particular when considering the root zone soil moisture of ORCHIDEE. However, the root zone soil moisture in ORCHIDEE has on average a higher temporal autocorrelation relative to AMSR-E (LPRM) and in situ measurements. This may be due to the different vertical depth of the two products - AMSR-E (LPRM) at the 2-5 cm surface depth and ORCHIDEE at the root zone (max. 2 m) depth - to uncertainty in precipitation forcing in ORCHIDEE, and to the fact that the structure of ORCHIDEE consists of a single-layer deep soil, which does not allow simulation of the proper cascade of time scales that characterize soil drying after each rain event. We conclude that assimilating soil moisture, using AMSR-E (LPRM) in a land surface model like ORCHIDEE with an improved hydrological model of more than one soil layer, may significantly improve the soil moisture dynamics, which could lead to improved CO _2 and energy flux predictions.
机译:在当地和全球范围内,土壤水分的可用性对于调节光合作用和控制土地表层气候反馈都很重要。最近,全球土壤湿度遥感数据集已经可用。在本文中,我们通过使用相关性和自相关分析来评估这两种产品之间的对应关系,从而评估使用遥感土壤水分-AMSR-E(LPRM)来模拟基于过程的植被模型ORCHIDEE的土壤水分动力学的可能性。我们发现AMSR-E(LPRM)的土壤水分积与ORCHIDEE中的模拟土壤水分在空间和时间上具有很好的相关性,特别是在考虑ORCHIDEE的根区土壤水分时。但是,相对于AMSR-E(LPRM)和原位测量,ORCHIDEE中的根区土壤水分平均具有较高的时间自相关。这可能是由于两种产品的垂直深度不同-2-5 cm表面深度的AMSR-E(LPRM)和根部区域(最大2 m)深度的ORCHIDEE-ORCHIDEE中降水强迫的不确定性,并且ORCHIDEE的结构由单层深层土壤组成,因此无法模拟描述每次降雨事件后土壤干燥的适当时标级联。我们得出的结论是,在像ORCHIDEE这样的陆地表面模型中使用AMSR-E(LPRM)吸收土壤水分,可以改善土壤水分动力学,从而改善CO _2和能量通量预测。

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