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首页> 外文期刊>Advances in Water Resources >Analysis of coupling errors in a physically-based integrated surface water-groundwater model
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Analysis of coupling errors in a physically-based integrated surface water-groundwater model

机译:基于物理的地表水-地下水综合模型中的耦合误差分析

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摘要

Several physically-based models that couple ID or 2D surface and 3D subsurface flow have recently been developed, but few studies have evaluated the errors directly associated with the different coupling schemes. In this paper we analyze the causes of mass balance error for a conventional and a modified sequential coupling scheme in worst-case scenario simulations of Hortonian runoff generation on a sloping plane catchment. The conventional scheme is noniterative, whereas for the modified scheme the surface-subsurface exchange fluxes are determined via a boundary condition switching procedure that is performed iteratively during resolution of the nonlinear subsurface flow equation. It is shown that the modified scheme generates much lower coupling mass balance errors than the conventional sequential scheme. While both coupling schemes are sensitive to time discretization, the iterative control of infiltration in the modified scheme greatly limits its sensitivity to temporal resolution. Little sensitivity to spatial discretization is observed for both schemes. For the modified scheme the different factors contributing to coupling error are isolated, and the error is observed to be highly correlated to the flood recession duration. More testing, under broader hydrologic contexts and including other coupling schemes, is recommended so that the findings from this first analysis of coupling errors can be extended to other surface water-groundwater models.
机译:最近已经开发了几种将ID或2D表面和3D地下流耦合的基于物理的模型,但是很少有研究评估与不同耦合方案直接相关的误差。在本文中,我们分析了倾斜平面集水区霍顿径流产生的最坏情况模拟中,常规和改进的顺序耦合方案的质量平衡误差的原因。常规方案是非迭代的,而对于改进方案,则通过边界条件切换程序确定表面-地下交换通量,该边界条件切换程序在非线性地下流量方程的解析过程中迭代执行。结果表明,与常规顺序方案相比,改进方案产生的耦合质量平衡误差要低得多。虽然这两种耦合方案都对时间离散敏感,但修改方案中渗透的迭代控制极大地限制了其对时间分辨率的敏感性。两种方案对空间离散化的敏感性都很小。对于修改后的方案,隔离了导致耦合误差的不同因素,并且观察到该误差与洪水衰退持续时间高度相关。建议在更广泛的水文环境下并包括其他耦合方案进行更多测试,以便将耦合误差的首次分析结果扩展到其他地表水-地下水模型。

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