Computational homogenization of unsteady flows in a periodic porous medium

Fuente: arXiv
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Auteur principal: Vabishchevich, P. N.
Format: Preprint
Publié: 2026
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author Vabishchevich, P. N.
author_facet Vabishchevich, P. N.
contents The work is devoted to the development and computational implementation of the homogenization method for modeling unsteady flows of a viscous incompressible fluid in periodic porous media taking into account memory effects. At the macrolevel, the flow is described by an integro-differential Darcy law with a tensor memory kernel determined by solving unsteady problems on the periodicity cell. The developed approach to computational homogenization is based on finding the steady-state and unsteady components of the conductivity tensor from solving auxiliary boundary value and spectral problems on the periodicity cell. The nonlocal macroscopic problem is transformed into a local system of differential equations by approximating the memory kernel as a sum of exponentials. Issues of spatial finite element approximation are discussed, and stable two-level schemes in time are constructed. The results of applying the developed computational homogenization technology for unsteady filtration problems in porous media to a two-dimensional test problem are presented.
format Preprint
id arxiv_https___arxiv_org_abs_2604_25722
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Computational homogenization of unsteady flows in a periodic porous medium
Vabishchevich, P. N.
Numerical Analysis
76S05, 35B27, 45K05, 76D07, 65M60
The work is devoted to the development and computational implementation of the homogenization method for modeling unsteady flows of a viscous incompressible fluid in periodic porous media taking into account memory effects. At the macrolevel, the flow is described by an integro-differential Darcy law with a tensor memory kernel determined by solving unsteady problems on the periodicity cell. The developed approach to computational homogenization is based on finding the steady-state and unsteady components of the conductivity tensor from solving auxiliary boundary value and spectral problems on the periodicity cell. The nonlocal macroscopic problem is transformed into a local system of differential equations by approximating the memory kernel as a sum of exponentials. Issues of spatial finite element approximation are discussed, and stable two-level schemes in time are constructed. The results of applying the developed computational homogenization technology for unsteady filtration problems in porous media to a two-dimensional test problem are presented.
title Computational homogenization of unsteady flows in a periodic porous medium
topic Numerical Analysis
76S05, 35B27, 45K05, 76D07, 65M60
url https://arxiv.org/abs/2604.25722