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PMID: 29982960 Published · ppublish English Journal Article

Assessment of boundary conditions for CFD simulation in human carotid artery.

Biomechanics and modeling in mechanobiology ·Vol. 17 ·No. 6 ·2018-12-00 ·页码 1581-1597

Xu P, Liu X, Zhang H, Ghista D, Zhang D, Shi C, Huang W

Abstract

Computational fluid dynamics (CFD) is an increasingly used method for investigation of hemodynamic parameters and their alterations under pathological conditions, which are important indicators for diagnosis of cardiovascular disease. In hemodynamic simulation models, the employment of appropriate boundary conditions (BCs) determines the computational accuracy of the CFD simulation in comparison with pressure and velocity measurements. In this study, we have first assessed the influence of inlet boundary conditions on hemodynamic CFD simulations. We selected two typical patients suspected of carotid artery disease, with mild stenosis and severe stenosis. Both patients underwent digital subtraction angiography (DSA), magnetic resonance angiography, and the invasive pressure guide wire measured pressure profile. We have performed computational experiments to (1) study the hemodynamic simulation outcomes of distributions of wall shear stress, pressure, pressure gradient and (2) determine the differences in hemodynamic performances caused by inlet BCs derived from DSA and Womersley analytical solution. Our study has found that the difference is related to the severity of the stenosis; the greater the stenosis, the more the difference ensues. Further, in our study, the two typical subjects with invasively measured pressure profile and thirty subjects with ultrasound Doppler velocimeter (UDV) measurement served as the criteria to evaluate the hemodynamic outcomes of wall shear stress, pressure, pressure gradient and velocity due to different outlet BCs based on the Windkessel model, structured-tree model, and fully developed flow model. According to the pressure profiles, the fully developed model appeared to have more fluctuations compared with the other two models. The Windkessel model had more singularities before convergence. The three outlet BCs models also showed good correlation with the UDV measurement, while the Windkessel model appeared to be slightly better ([Formula: see text]). The structured-tree model was seen to have the best performance in terms of available computational cost and accuracy. The results of our numerical simulation and the good correlation with the computed pressure and velocity with their measurements have highlighted the effectiveness of CFD simulation in patient-specific human carotid artery with suspected stenosis.

Keywords
Boundary conditions CFD Carotid artery DSA Pressure profile UDV
MeSH 主题词
Adult Aged Angiography Atherosclerosis/physiopathology Blood Flow Velocity Carotid Arteries/physiopathology Carotid Artery Diseases/physiopathology Computer Simulation Constriction, Pathologic Hemodynamics Humans Hydrodynamics Imaging, Three-Dimensional Magnetic Resonance Angiography Middle Aged Models, Cardiovascular Pressure Reproducibility of Results Stress, Mechanical
作者与单位
共 7 位作者,点击展开单位 / ORCID
Xu Pengcheng
Department of Anatomy, Guangdong Provincial Key Laboratory of Medical Biomechanics, School of Basic Medical Science, Southern Medical University, Guangzhou, 510515, China.
Liu Xin
Department of Anatomy, Guangdong Provincial Key Laboratory of Medical Biomechanics, School of Basic Medical Science, Southern Medical University, Guangzhou, 510515, China.
Zhang Heye ORCID
School of Biomedical Engineering, Sun Yat-Sen University, Shenzhen, 510006, China.
Ghista Dhanjoo
University 2020 Foundation, Northborough, MA, 01532, USA.
Zhang Dong
Department of Medical Imaging Center, The First Affiliated Hospital, Jinan University, Guangzhou, 510630, China.
Shi Changzheng
Department of Medical Imaging Center, The First Affiliated Hospital, Jinan University, Guangzhou, 510630, China.
Huang Wenhua
Department of Anatomy, Guangdong Provincial Key Laboratory of Medical Biomechanics, School of Basic Medical Science, Southern Medical University, Guangzhou, 510515, China. [email protected].
Article Info
Journal
Biomechanics and modeling in mechanobiology
Abbr.
Biomech Model Mechanobiol
ISSN
1617-7940
Corresponding email
Published
2018-12-00
电子出版
2018-00-07
页码
1581-1597
Language
English
Country/Region
Germany
NLM ID
101135325
基金资助
National High Technology Research and Development Program (863 Program) · SS2015AA020109
National Key Research and Development Program of China · 2016YFC1301700
Science technology and innovation committee of Shenzhen · JCYJ20151030151431727
Science technology and innovation committee of Shenzhen · JCYJ20170413114916687
Science technology and innovation committee of Shenzhen · SGLH20161212104605195
Science technology and innovation committee of Shenzhen · JCYJ20170307165309009
the Guangzhou Science and Technology Planning Project · 201704020079
the South Wisdom Valley Innovation Team Plan · 2015CXTD05
the National Natural science Foundational of China · 61771464
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