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PMID: 34218038 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

On delayed transition to turbulence in an eccentric stenosis model for clean vs. noisy high-fidelity CFD.

Journal of biomechanics ·Vol. 125 ·2021-00-26 ·页码 110588

Haley AL, Valen-Sendstad K, Steinman DA

Abstract

Recent comparisons between experiments and computational fluid dynamics (CFD) simulations of flow in the Food and Drug Administration (FDA) standardized nozzle geometry have highlighted the potential sensitivity of axisymmetric CFD models to small perturbations induced by mesh and inlet velocity, particularly for Reynolds numbers (Re) in the transitional regime. This evokes the classic experiment of Reynolds on transition to turbulence in a straight pipe, which can be delayed, apparently indefinitely, if special care is taken to control for external influences. Such idealized experiments are, however, extremely difficult to perform and, in the context of cardiovascular modeling, belie the "noise" inherent in typical experimental and physiological systems. Previous high-fidelity CFD of a canonical eccentric (i.e., non-axisymmetric) stenosis model showed transition occurring for steady flow at Re ~ 700-800, with modest delay caused by the introduction of shear-thinning rheology. On the other hand, recent experimental measurements of steady flowing blood and blood-mimicking fluids in this same stenosis model report transition for Re ~ 400-500. Taking a cue from the FDA nozzle controversy, the present study demonstrates that the addition of small-magnitude random noise at the inlet brings the eccentric-stenosis CFD results more in-line with experiments, and reveals a more gradual transition towards turbulence. This highlights that, even in non-axisymmetric idealized geometries, unnaturally "clean" high-fidelity CFD may impede not only good agreement with experiments, but also understanding of the onset and character of blood flow instabilities as they may exist, naturally, in the vasculature.

Keywords
CFD Non-Newtonian Stenosis Symmetry Transition Turbulence
MeSH 主题词
Blood Flow Velocity Computer Simulation Constriction, Pathologic Hemodynamics Humans Hydrodynamics Models, Cardiovascular Rheology
作者与单位
共 3 位作者,点击展开单位 / ORCID
Haley A L
Department of Mechanical & Industrial Engineering, University of Toronto, Toronto, Ontario, Canada.
Valen-Sendstad K
Department of Computational Physiology, Simula Research Laboratory, Fornebu, Norway.
Steinman D A
Department of Mechanical & Industrial Engineering, University of Toronto, Toronto, Ontario, Canada. Electronic address: [email protected].
Article Info
Journal
Journal of biomechanics
Abbr.
J Biomech
ISSN
1873-2380
Corresponding email
Published
2021-00-26
电子出版
2021-00-25
页码
110588
Language
English
Country/Region
United States
NLM ID
0157375
数据资源
figshare
10.6084/m9.figshare.14597847
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