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Impact of model coupling bias on water flux estimates acquired from a land data assimilation system

机译:模型耦合偏置对土地数据同化系统中获取的水通量估计的影响

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Land data assimilation (DA) systems have a well-documented track record of utilizing satellite observations to enhance the estimation of land surface states (e.g., soil moisture and soil temperature). However, evidence that land DA can also improve water and energy flux estimates (e.g., evapotranspiration and runoff) is much less compelling. As a result, the role of land DA in flux-based applications like numerical weather prediction and hydrologic forecasting remains somewhat uncertain. Here we hypothesize that the source of this problem is bias in the representation of state/flux coupling strength (e.g., soil moisture /evapotranspiration and soil moisture/runoff) within existing land surface models. These coupling biases effectively prevent improvements in land surface states (realized during land DA) from propagating into enhanced flux estimates. Prospects for utilizing satellite remote sensing to eliminate these biases and enhance the positive impact of land DA are discussed.
机译:土地数据同化(DA)系统具有利用卫星观测的良好记录,以增强地面状态的估计(例如,土壤水分和土壤温度)。然而,陆地DA也可以改善水和能量通量估计(例如,蒸散散,径流)的证据较小。结果,Land Da在基于助焊剂的应用中的作用,如数值天气预报和水文预测等仍然有所不确定。在这里,我们假设该问题的来源是在现有土地表面模型中的状态/通量耦合强度(例如土壤水分/蒸发和土壤水分/径流)的偏差。这些耦合偏置有效地防止了陆地表面状态的改进(在Land DA期间实现)传播到增强的助焊率估计中。利用卫星遥感来消除这些偏差的前景并增强土地DA的积极影响。

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