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PMID: 26849955 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The numerical analysis of non-Newtonian blood flow in human patient-specific left ventricle.

Computer methods and programs in biomedicine ·Vol. 127 ·2016-04-00 ·页码 232-47

Doost SN, Zhong L, Su B, Morsi YS

Abstract

Recently, various non-invasive tools such as the magnetic resonance image (MRI), ultrasound imaging (USI), computed tomography (CT), and the computational fluid dynamics (CFD) have been widely utilized to enhance our current understanding of the physiological parameters that affect the initiation and the progression of the cardiovascular diseases (CVDs) associated with heart failure (HF). In particular, the hemodynamics of left ventricle (LV) has attracted the attention of the researchers due to its significant role in the heart functionality. In this study, CFD owing its capability of predicting detailed flow field was adopted to model the blood flow in images-based patient-specific LV over cardiac cycle. In most published studies, the blood is modeled as Newtonian that is not entirely accurate as the blood viscosity varies with the shear rate in non-linear manner. In this paper, we studied the effect of Newtonian assumption on the degree of accuracy of intraventricular hemodynamics. In doing so, various non-Newtonian models and Newtonian model are used in the analysis of the intraventricular flow and the viscosity of the blood. Initially, we used the cardiac MRI images to reconstruct the time-resolved geometry of the patient-specific LV. After the unstructured mesh generation, the simulations were conducted in the CFD commercial solver FLUENT to analyze the intraventricular hemodynamic parameters. The findings indicate that the Newtonian assumption cannot adequately simulate the flow dynamic within the LV over the cardiac cycle, which can be attributed to the pulsatile and recirculation nature of the flow and the low blood shear rate.

Keywords
Computational fluid dynamics Fluid–structure interaction Hemodynamics Left ventricle Non-Newtonian Shear rates
MeSH 主题词
Coronary Circulation Heart Ventricles/diagnostic imaging Humans Models, Theoretical
作者与单位
共 4 位作者,点击展开单位 / ORCID
Doost Siamak N
Biomechanical and Tissue Engineering Lab, Faculty of Science, Engineering and Technology, Swinburne University of Technology, Australia. Electronic address: [email protected].
Zhong Liang
Duke-NUS Graduate Medical School, Singapore; National Heart Research Institute of Singapore, National Heart Centre, Singapore. Electronic address: [email protected].
Su Boyang
National Heart Research Institute of Singapore, National Heart Centre, Singapore.
Morsi Yosry S
Biomechanical and Tissue Engineering Lab, Faculty of Science, Engineering and Technology, Swinburne University of Technology, Australia.
Article Info
Journal
Computer methods and programs in biomedicine
Abbr.
Comput Methods Programs Biomed
ISSN
1872-7565
Published
2016-04-00
电子出版
2016-00-21
页码
232-47
Language
English
Country/Region
Ireland
NLM ID
8506513
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