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PMID: 30257924 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Accounting for residence-time in blood rheology models: do we really need non-Newtonian blood flow modelling in large arteries?

Journal of the Royal Society, Interface ·Vol. 15 ·No. 146 ·2018-00-26

Arzani A

Abstract

Patient-specific computational fluid dynamics (CFD) is a promising tool that provides highly resolved haemodynamics information. The choice of blood rheology is an assumption in CFD models that has been subject to extensive debate. Blood is known to exhibit shear-thinning behaviour, and non-Newtonian modelling has been recommended for aneurysmal flows. Current non-Newtonian models ignore rouleaux formation, which is the key player in blood's shear-thinning behaviour. Experimental data suggest that red blood cell aggregation and rouleaux formation require notable red blood cell residence-time (RT) in a low shear rate regime. This study proposes a novel hybrid Newtonian and non-Newtonian rheology model where the shear-thinning behaviour is activated in high RT regions based on experimental data. Image-based abdominal aortic and cerebral aneurysm models are considered and highly resolved CFD simulations are performed using a minimally dissipative solver. Lagrangian particle tracking is used to define a backward particle RT measure and detect stagnant regions with increased rouleaux formation likelihood. Our novel RT-based non-Newtonian model shows a significant reduction in shear-thinning effects and provides haemodynamic results qualitatively identical and quantitatively close to the Newtonian model. Our results have important implications in patient-specific CFD modelling and suggest that non-Newtonian models should be revisited in large artery flows.

Keywords
Lagrangian particle tracking aneurysm computational fluid dynamics haemodynamics rouleaux formation wall shear stress
MeSH 主题词
Arteries/physiology Blood Flow Velocity Computer Simulation Erythrocytes/cytology Hemodynamics Humans Hydrodynamics Intracranial Aneurysm Models, Cardiovascular Probability Rheology/methods Shear Strength Stress, Mechanical Viscosity
作者与单位
共 1 位作者,点击展开单位 / ORCID
Arzani Amirhossein ORCID
Department of Mechanical Engineering, Northern Arizona University, Flagstaff, AZ, USA [email protected].
Article Info
Journal
Journal of the Royal Society, Interface
Abbr.
J R Soc Interface
ISSN
1742-5662
Corresponding email
Published
2018-00-26
电子出版
2018-00-26
Language
English
Country/Region
England
NLM ID
101217269
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