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首页> 外文期刊>Journal of hydrometeorology >Uncertainty Analysis of Runoff Simulations and Parameter Identifiability in the Community Land Model: Evidence from MOPEX Basins
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Uncertainty Analysis of Runoff Simulations and Parameter Identifiability in the Community Land Model: Evidence from MOPEX Basins

机译:社区土地模型径流模拟和参数可识别性的不确定性分析:来自MOPEX盆地的证据

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摘要

In this study, the authors applied version 4 of the Community Land Model (CLM4) integrated with an uncertainty quantification (UQ) framework to 20 selected watersheds from the Model Parameter Estimation Experiment (MOPEX) spanning a wide range of climate and site conditions to investigate the sensitivity of runoff simulations to major hydrologic parameters and to assess the fidelity of CLM4, as the land component of the Community Earth System Model (CESM), in capturing realistic hydrological responses. They found that for runoff simulations, the most significant parameters are those related to the subsurface runoff parameterizations. Soil texture-related parameters and surface runoff parameters are of secondary significance. Moreover, climate and soil conditions play important roles in the parameter sensitivity. In general, waterlimited hydrologic regime and finer soil texture result in stronger sensitivity of output variables, such as runoff and its surface and subsurface components, to the input parameters in CLM4. This study evaluated the parameter identifiability of hydrological parameters from streamflow observations at selected MOPEX basins and demonstrated the feasibility of parameter inversion/calibration for CLM4 to improve runoff simulations. The results suggest that in order to calibrate CLM4 hydrologic parameters, model reduction is needed to include only the identifiable parameters in the unknowns. With the reduced parameter set dimensionality, the inverse problem is less ill posed.
机译:在这项研究中,作者将结合不确定性量化(UQ)框架的社区土地模型(CLM4)的第4版应用于模型参数估计实验(MOPEX)所选择的20个流域,这些流域涉及广泛的气候和现场条件,以进行调查径流模拟对主要水文参数的敏感性,并评估CLM4(作为社区地球系统模型(CESM)的土地组成部分)的逼真度,以捕获现实的水文响应。他们发现,对于径流模拟,最重要的参数是与地下径流参数化相关的参数。与土壤质地有关的参数和地表径流参数具有次要意义。此外,气候和土壤条件在参数敏感性中起着重要作用。通常,受水限制的水文状况和更精细的土壤质地会导致输出变量(如径流及其地表和地下成分)对CLM4中输入参数的敏感性更高。这项研究评估了从选定的MOPEX盆地的水流观测中得出的水文参数的参数可识别性,并论证了CLM4进行参数反演/校准以改善径流模拟的可行性。结果表明,为了校准CLM4水文参数,需要模型简化以仅包括未知数中的可识别参数。随着参数集维数的减少,反问题较少出现。

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