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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >The impact of standard and hard-coded parameters on the hydrologic fluxes in the Noah-MP land surfacemodel
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The impact of standard and hard-coded parameters on the hydrologic fluxes in the Noah-MP land surfacemodel

机译:标准参数和硬编码参数对Noah-MP陆面模型中水文通量的影响

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摘要

Land surface models incorporate a large number of process descriptions, containing a multitude of parameters. These parameters are typically read from tabulated input files. Some of these parameters might be fixed numbers in the computer code though, which hinder model agility during calibration. Here we identified 139 hard-coded parameters in the model code of the Noah land surface model with multiple process options (Noah-MP). We performed a Sobol' global sensitivity analysis of Noah-MP for a specific set of process options, which includes 42 out of the 71 standard parameters and 75 out of the 139 hard-coded parameters. The sensitivities of the hydrologic output fluxes latent heat and total runoff as well as their component fluxes were evaluated at 12 catchments within the United States with very different hydrometeorological regimes. Noah-MP's hydrologic output fluxes are sensitive to two thirds of its applicable standard parameters (i.e., Sobol' indexes above 1%). The most sensitive parameter is, however, a hard-coded value in the formulation of soil surface resistance for direct evaporation, which proved to be oversensitive in other land surface models as well. Surface runoff is sensitive to almost all hard-coded parameters of the snow processes and the meteorological inputs. These parameter sensitivities diminish in total runoff. Assessing these parameters in model calibration would require detailed snow observations or the calculation of hydrologic signatures of the runoff data. Latent heat and total runoff exhibit very similar sensitivities because of their tight coupling via the water balance. A calibration of Noah-MP against either of these fluxes should therefore give comparable results. Moreover, these fluxes are sensitive to both plant and soil parameters. Calibrating, for example, only soil parameters hence limit the ability to derive realistic model parameters. It is thus recommended to include the most sensitive hard-coded model parameters that were exposed in this study when calibrating Noah-MP.
机译:陆地表面模型包含大量的过程描述,其中包含多个参数。这些参数通常是从表格输入文件中读取的。但是,其中一些参数可能是计算机代码中的固定数字,这会妨碍校准期间的模型敏捷性。在这里,我们在具有多个处理选项(Noah-MP)的诺亚陆地表面模型的模型代码中标识了139个硬编码参数。我们针对一组特定的处理选项进行了Sobol对Noah-MP的全局敏感性分析,其中包括71种标准参数中的42种以及139种硬编码参数中的75种。水文输出通量的潜热和总径流量以及它们的组成通量的敏感性是在美国十二个流域采用不同的水文气象方法进行评估的。 Noah-MP的水文输出通量对其适用的标准参数(即Sobol指数高于1%)的三分之二敏感。但是,最敏感的参数是用于直接蒸发的土壤表面电阻公式中的硬编码值,在其他陆地表面模型中也被证明是过敏感的。地表径流对降雪过程和气象输入的几乎所有硬编码参数敏感。这些参数敏感性在总径流中减小。在模型校准中评估这些参数将需要详细的积雪观测或径流数据的水文特征计算。潜热和总径流表现出非常相似的灵敏度,因为它们通过水平衡紧密耦合。因此,针对这些通量中的任何一个对Noah-MP进行校准都应得出可比的结果。而且,这些通量对植物和土壤参数均敏感。因此,例如仅校准土壤参数会限制导出实际模型参数的能力。因此,建议在校准Noah-MP时包括本研究中暴露的最敏感的硬编码模型参数。

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