| Literature DB >> 32546894 |
Guoliang Ju1, Mingchao Cai2, Jingzhi Li3, Jing Tian4.
Abstract
In this paper, we develop parameter-robust numerical algorithms for Biot model and apply the algorithms in brain edema simulations. By introducing an intermediate variable, we derive a multiphysics reformulation of the Biot model. Based on the reformulation, the Biot model is viewed as a generalized Stokes subproblem combining with a reaction-diffusion subproblem. Solving the two subproblems together or separately leads to a coupled or a decoupled algorithm. We conduct extensive numerical experiments to show that the two algorithms are robust with respect to the key physical parameters. The algorithms are applied to study the brain swelling caused by abnormal accumulation of cerebrospinal fluid in injured areas. The effects of the key physical parameters on brain swelling are carefully investigated. It is observed that the permeability has the biggest influence on intracranial pressure (ICP) and tissue deformation; the Young's modulus and the Poisson ratio do not affect the maximum value of ICP too much but have big influence on the tissue deformation and the developing speed of brain swelling.Entities:
Keywords: Biot equations; Brain edema; Poroelasticity
Year: 2020 PMID: 32546894 PMCID: PMC7297196 DOI: 10.1016/j.matcom.2020.04.027
Source DB: PubMed Journal: Math Comput Simul ISSN: 0378-4754 Impact factor: 2.463