永久冻土
离散化
地下水流
MODFLOW
时间离散化
地下水
流量(数学)
航程(航空)
环境科学
计算机科学
水文学(农业)
气象学
岩土工程
地质学
含水层
机械
数学
工程类
航空航天工程
地理
数学分析
物理
海洋学
作者
Christophe Grenier,Hauke Anbergen,Victor Bense,Quentin Chanzy,Ethan T. Coon,Nathaniel Collier,F. Costard,Michel Ferry,Andrew Frampton,Jennifer Frederick,Julio Gonçalvès,Johann Holmén,Anne Jost,Samuel Kokh,Barret L. Kurylyk,Jeffrey M. McKenzie,John Molson,Emmanuel Mouche,Laurent Orgogozo,Romain Pannetier
标识
DOI:10.1016/j.advwatres.2018.02.001
摘要
In high-elevation, boreal and arctic regions, hydrological processes and associated water bodies can be strongly influenced by the distribution of permafrost. Recent field and modeling studies indicate that a fully-coupled multidimensional thermo-hydraulic approach is required to accurately model the evolution of these permafrost-impacted landscapes and groundwater systems. However, the relatively new and complex numerical codes being developed for coupled non-linear freeze-thaw systems require verification. This issue is addressed by means of an intercomparison of thirteen numerical codes for two-dimensional test cases with several performance metrics (PMs). These codes comprise a wide range of numerical approaches, spatial and temporal discretization strategies, and computational efficiencies. Results suggest that the codes provide robust results for the test cases considered and that minor discrepancies are explained by computational precision. However, larger discrepancies are observed for some PMs resulting from differences in the governing equations, discretization issues, or in the freezing curve used by some codes.
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