Random Walk Methods for Modeling Hydrodynamic Transport in Porous and Fractured Media from Pore to Reservoir Scale

被引:0
|
作者
Benoit Noetinger
Delphine Roubinet
Anna Russian
Tanguy Le Borgne
Frederick Delay
Marco Dentz
Jean-Raynald de Dreuzy
Philippe Gouze
机构
[1] IFPEN,Applied and Environmental Geophysics Group, Institute of Earth Sciences
[2] University of Lausanne,Géosciences, CNRS
[3] Université de Montpellier,CNRS, Géosciences Rennes, UMR 6118
[4] Université de Rennes 1,Laboratoire dHydrologie et de Géochimie de Strasbourg, CNRS UMR 7517
[5] Univ. Strasbourg/EOST,Institute of Environmental Assessment and Water Research
[6] Spanish National Research Council,CNRS, UMR 6118
[7] Géosciences Rennes,undefined
来源
Transport in Porous Media | 2016年 / 115卷
关键词
Random walk; Random media; Fractured media; Diffusion; Dispersion; Upscaling; Transfers; Multiple porosity;
D O I
暂无
中图分类号
学科分类号
摘要
Random walk (RW) methods are recurring Monte Carlo methods used to model convective and diffusive transport in complex heterogeneous media. Many applications can be found, including fluid mechanic, hydrology and chemical reactors modeling. These methods are easy to implement, very versatile and flexible enough to become appealing for many applications because they generally overlook or deeply simplify the building of explicit complex meshes required by deterministic methods. RW provides a good physical understanding of the interactions between the space scales of heterogeneities and the transport phenomena under consideration. In addition, they can result in efficient upscaling methods, especially in the context of flow and transport in fractured media. In the present study, we review the applications of RW to several situations that cope with diverse spatial scales and different insights into upscaling problems. The advantages and downsides of RW are also discussed, thus providing a few avenues for further works and applications.
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页码:345 / 385
页数:40
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