Finite Element Methods for Large-Strain Poroelasticity/Chemotaxis Models Simulating the Formation of Myocardial Oedema

被引:0
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作者
N. A. Barnafi
B. Gómez-Vargas
W. J. Lourenço
R. F. Reis
B. M. Rocha
M. Lobosco
R. Ruiz-Baier
R. Weber dos Santos
机构
[1] Università degli Studi di Milano,Department of Mathematics “Federigo Enriques”
[2] Universidad de Costa Rica,Sección de Matemática, Sede de Occidente
[3] Federal University of Juiz de Fora,Graduate Program on Computational Modeling
[4] Monash University,School of Mathematical Sciences and Victorian Heart Institute
[5] Sechenov First Moscow State Medical University,World
[6] Universidad Adventista de Chile,Class Research Center “Digital biodesign and personalized healthcare”
来源
关键词
Poroelasticity; Reaction-diffusion; Finite-strain regime; Cardiac applications; Oedema formation; Finite element discretisation; 92C10; 65M60; 74L15; 35K57;
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摘要
In this paper we propose a novel coupled poroelasticity-diffusion model for the formation of extracellular oedema and infectious myocarditis valid in large deformations, manifested as an interaction between interstitial flow and the immune-driven dynamics between leukocytes and pathogens. The governing partial differential equations are formulated in terms of skeleton displacement, fluid pressure, Lagrangian porosity, and the concentrations of pathogens and leukocytes. A five-field finite element scheme is proposed for the numerical approximation of the problem, and we provide the stability analysis for a simplified system emanating from linearisation. We also discuss the construction of an adequate, Schur complement based, nested preconditioner. The produced computational tests exemplify the properties of the new model and of the finite element schemes.
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