Convergence analysis and a novel Lagrange multiplier partitioned method for fluid-poroelastic interaction

Fuente: arXiv
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Auteurs principaux: de Castro, Amy, Lee, Hyesuk
Format: Preprint
Publié: 2026
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author de Castro, Amy
Lee, Hyesuk
author_facet de Castro, Amy
Lee, Hyesuk
contents We propose a partitioned method for the monolithic formulation of the Stokes-Biot system that incorporates Lagrange multipliers enforcing the interface conditions. The monolithic system is discretized using finite elements, and we establish convergence of the resulting approximation. A Schur complement based algorithm is developed together with an efficient preconditioner, enabling the fluid and poroelastic structure subproblems to be decoupled and solved independently at each time step. The Lagrange multipliers approximate the interface fluxes and act as Neumann boundary conditions for the subproblems, yielding parallel solution of the Stokes and Biot equations. Numerical experiments demonstrate the effectiveness of the proposed algorithm and validate the theoretical error estimate.
format Preprint
id arxiv_https___arxiv_org_abs_2601_14201
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Convergence analysis and a novel Lagrange multiplier partitioned method for fluid-poroelastic interaction
de Castro, Amy
Lee, Hyesuk
Numerical Analysis
We propose a partitioned method for the monolithic formulation of the Stokes-Biot system that incorporates Lagrange multipliers enforcing the interface conditions. The monolithic system is discretized using finite elements, and we establish convergence of the resulting approximation. A Schur complement based algorithm is developed together with an efficient preconditioner, enabling the fluid and poroelastic structure subproblems to be decoupled and solved independently at each time step. The Lagrange multipliers approximate the interface fluxes and act as Neumann boundary conditions for the subproblems, yielding parallel solution of the Stokes and Biot equations. Numerical experiments demonstrate the effectiveness of the proposed algorithm and validate the theoretical error estimate.
title Convergence analysis and a novel Lagrange multiplier partitioned method for fluid-poroelastic interaction
topic Numerical Analysis
url https://arxiv.org/abs/2601.14201