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PMID: 24179251 Published · ppublish English Journal Article

A novel multiblock immersed boundary method for large eddy simulation of complex arterial hemodynamics.

Journal of computational physics ·Vol. 254 ·2013-12-01

Anupindi K, Delorme Y, Shetty DA, Frankel SH

Abstract

Computational fluid dynamics (CFD) simulations are becoming a reliable tool to understand hemodynamics, disease progression in pathological blood vessels and to predict medical device performance. Immersed boundary method (IBM) emerged as an attractive methodology because of its ability to efficiently handle complex moving and rotating geometries on structured grids. However, its application to study blood flow in complex, branching, patient-specific anatomies is scarce. This is because of the dominance of grid nodes in the exterior of the fluid domain over the useful grid nodes in the interior, rendering an inevitable memory and computational overhead. In order to alleviate this problem, we propose a novel multiblock based IBM that preserves the simplicity and effectiveness of the IBM on structured Cartesian meshes and enables handling of complex, anatomical geometries at a reduced memory overhead by minimizing the grid nodes in the exterior of the fluid domain. As pathological and medical device hemodynamics often involve complex, unsteady transitional or turbulent flow fields, a scale resolving turbulence model such as large eddy simulation (LES) is used in the present work. The proposed solver (here after referred as WenoHemo), is developed by enhancing an existing in-house high order incompressible flow solver that was previously validated for its numerics and several LES models by Shetty et al. [Journal of Computational Physics 2010; 229 (23), 8802-8822]. In the present work, WenoHemo is systematically validated for additional numerics introduced, such as IBM and the multiblock approach, by simulating laminar flow over a sphere and laminar flow over a backward facing step respectively. Then, we validate the entire solver methodology by simulating laminar and transitional flow in abdominal aortic aneurysm (AAA). Finally, we perform blood flow simulations in the challenging clinically relevant thoracic aortic aneurysm (TAA), to gain insights into the type of fluid flow patterns that exist in pathological blood vessels. Results obtained from the TAA simulations reveal complex vortical and unsteady flow fields that need to be considered in designing and implanting medical devices such as stent grafts.

Keywords
Biomechanical flows High-order finite difference Immersed boundary method Incompressible Large-eddy simulation Multiblock WENO
作者与单位
共 4 位作者,点击展开单位 / ORCID
Anupindi Kameswararao
School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907, USA.
Delorme Yann
Shetty Dinesh A
Frankel Steven H
Article Info
Journal
Journal of computational physics
Abbr.
J Comput Phys
ISSN
0021-9991
Published
2013-12-01
Language
English
Country/Region
United States
NLM ID
9883524
基金资助
NHLBI NIH HHS · R01 HL098353 · United States
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