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题名

A reduced unified continuum formulation for vascular fluid-structure interaction

作者
通讯作者Liu,Ju
发表日期
2022-05-01
DOI
发表期刊
ISSN
0045-7825
EISSN
1879-2138
卷号394
摘要
We recently derived the unified continuum and variational multiscale formulation for fluid-structure interaction (FSI) using the Gibbs free energy as the thermodynamic potential. Restricting our attention to vascular FSI, we now reduce this formulation in arbitrary Lagrangian-Eulerian (ALE) coordinates by adopting three common modeling assumptions for the vascular wall. The resulting semi-discrete formulation, referred to as the reduced unified continuum formulation, achieves monolithic coupling of the FSI system in the Eulerian frame through a simple modification of the fluid boundary integral. While ostensibly similar to the semi-discrete formulation of the coupled momentum method introduced by Figueroa et al., its underlying derivation does not rely on an assumption of a fictitious body force in the elastodynamics sub-problem and therefore represents a direct simplification of the ALE method. Furthermore, uniform temporal discretization of the entire FSI system is performed via the generalized-alpha scheme. In contrast to the predominant approach yielding only first-order accuracy for pressure, we collocate both pressure and velocity at the intermediate time step to achieve uniform second-order temporal accuracy. In conjunction with quadratic tetrahedral elements, our methodology offers higher-order temporal and spatial accuracy for quantities of clinical interest, including pressure and wall shear stress. Furthermore, without loss of consistency, a segregated predictor multi-corrector algorithm is developed to preserve the same block structure as for the incompressible Navier-Stokes equations in the implicit solver's associated linear system. Block preconditioning of a monolithically coupled FSI system is therefore made possible for the first time. Compared to alternative preconditioners, our three-level nested block preconditioner, which achieves improved representation of the Schur complement, demonstrates robust performance over a wide range of physical parameters. We present verification of our methodology against Womersley's deformable wall theory and additionally develop practical modeling techniques for clinical applications, including tissue prestressing. We conclude with an assessment of our combined FSI technology in two patient-specific cases. (C) 2022 Elsevier B.V. All rights reserved.
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收录类别
SCI ; EI
语种
英语
学校署名
通讯
资助项目
National Natural Science Foundation of China[12172160] ; National Institutes of Health, United States["1R01HL121754","1R01HL123689","R01EB01830204"] ; Southern University of Science and Technology, China[Y01326127] ; Guangdong-Hong Kong-Macao Joint Laboratory for Data-Driven Fluid Mechanics and Engineering Applications[2020B1212030001] ; NSF, United States[ACI-1053575]
WOS研究方向
Engineering ; Mathematics ; Mechanics
WOS类目
Engineering, Multidisciplinary ; Mathematics, Interdisciplinary Applications ; Mechanics
WOS记录号
WOS:000821092400008
出版者
EI入藏号
20221311844703
EI主题词
Free energy ; Gibbs free energy ; Linear systems ; Navier Stokes equations ; Shear stress
EI分类号
Thermodynamics:641.1 ; Calculus:921.2 ; Mechanics:931.1 ; Systems Science:961
ESI学科分类
COMPUTER SCIENCE
Scopus记录号
2-s2.0-85126970673
来源库
Web of Science
引用统计
被引频次[WOS]:5
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/329033
专题工学院_力学与航空航天工程系
作者单位
1.Department of Bioengineering,Stanford University,Stanford,94305,United States
2.Department of Mechanics and Aerospace Engineering,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China
3.Guangdong-Hong Kong-Macao Joint Laboratory for Data-Driven Fluid Mechanics and Engineering Applications,Southern University of Science and Technology,Shenzhen,Guangdong,518055,China
4.Department of Pediatrics (Cardiology),Stanford University,Stanford,94305,United States
5.Institute for Computational and Mathematical Engineering,Stanford University,Stanford,94305,United States
通讯作者单位力学与航空航天工程系;  南方科技大学
推荐引用方式
GB/T 7714
Lan,Ingrid S.,Liu,Ju,Yang,Weiguang,et al. A reduced unified continuum formulation for vascular fluid-structure interaction[J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING,2022,394.
APA
Lan,Ingrid S.,Liu,Ju,Yang,Weiguang,&Marsden,Alison L..(2022).A reduced unified continuum formulation for vascular fluid-structure interaction.COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING,394.
MLA
Lan,Ingrid S.,et al."A reduced unified continuum formulation for vascular fluid-structure interaction".COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING 394(2022).
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