Large deformation poromechanics with local mass conservation: An enriched Galerkin finite element framework

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Numerical modeling of large deformations in fluid-infiltrated porous media must accurately describe not only geometrically nonlinear kinematics but also fluid flow in heterogeneously deforming pore structure. Accurate simulation of fluid flow in heterogeneous porous media often requires a numerical method that features the local (elementwise) conservation property. Here, we introduce a new finite element framework for locally mass conservative solution of coupled poromechanical problems at large strains. At the core of our approach is the enriched Galerkin discretization of the fluid mass balance equation, whereby elementwise constant functions are augmented to the standard continuous Galerkin discretization. The resulting numerical method provides local mass conservation by construction with a usually affordable cost added to the continuous Galerkin counterpart. Two equivalent formulations are developed using total Lagrangian and updated Lagrangian approaches. The local mass conservation property of the proposed method is verified through numerical examples involving saturated and unsaturated flow in porous media at finite strains. The numerical examples also demonstrate that local mass conservation can be a critical element of accurate simulation of both fluid flow and large deformation in porous media.
Publisher
Wiley
Issue Date
2018-10
Language
English
Article Type
Article
Citation

International Journal for Numerical Methods in Engineering, v.116, no.1, pp.66 - 90

ISSN
0029-5981
DOI
10.1002/nme.5915
URI
http://hdl.handle.net/10203/291937
Appears in Collection
CE-Journal Papers(저널논문)
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