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PMID: 39961896 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Hemodynamics of asymmetrically stenotic vertebral arteries based on fluid-solid coupling.

Journal of biological physics ·Vol. 51 ·No. 1 ·2025-00-17 ·页码 10

Yilin Z, Haiquan F, Chen H, Juan S

Abstract

The study investigates the interaction between vertebral artery stenosis and pulsatile blood flow, with a focus on the mechanical properties and internal dynamics of blood flow. First, an asymmetrical stenosis mathematical model was established to reveal the relationship between the resistance ratio and shear stress ratio and their dependence on stenosis height and length. Next, various stenosis models were constructed using medical imaging data and analyzed through computational fluid dynamics (CFD) and fluid-structure interaction (FSI) methods. Finally, hemodynamic parameters, such as blood flow velocity and time-averaged wall shear stress (TAWSS), along with solid mechanics indicators, including total deformation and von Mises stress, were evaluated. The results indicate that changes in stenosis length and height significantly affect the resistance ratio and shear stress. Whole-segment stenosis in the vertebral artery may lead to thrombosis and intimal damage. In contrast, stenosis at the ostium of the vertebral artery increases the risk of platelet deposition on the vessel wall, potentially triggering atherosclerosis. This could ultimately lead to insufficient blood flow to the brain due to impaired vertebral artery circulation. FSI simulations revealed that elastic vessel walls are more sensitive to high-velocity flows, especially in stenotic and downstream regions. These findings provide critical insights into the effects of stenosis on blood flow and are crucial for developing effective clinical intervention strategies.

Keywords
Fluid–structure interaction Hemodynamics Mathematical models Stenosis Vertebral arteries
MeSH 主题词
Hemodynamics Humans Vertebral Artery/physiopathology,pathology Stress, Mechanical Vertebrobasilar Insufficiency/physiopathology Hydrodynamics Models, Cardiovascular Constriction, Pathologic/physiopathology Blood Flow Velocity
作者与单位
共 4 位作者,点击展开单位 / ORCID
Yilin Zheng
College of Mechanical Engineering, Inner Mongolia University of Technology, Hohhot, 010051, People's Republic of China.
Haiquan Feng
College of Mechanical Engineering, Inner Mongolia University of Technology, Hohhot, 010051, People's Republic of China. [email protected].
Chen He
Inner Mongolia People's Hospital, Hohhot, 010051, People's Republic of China.
Juan Su
School of Materials Science and Engineering, Inner Mongolia University of Technology, Hohhot, 010051, China.
Article Info
Journal
Journal of biological physics
Abbr.
J Biol Phys
ISSN
1573-0689
Corresponding email
Published
2025-00-17
电子出版
2025-00-17
页码
10
Language
English
Country/Region
Netherlands
NLM ID
0417731
基金资助
National Natural Science Foundation of China · 12162026
Natural Science Foundation of Inner Mongolia · 2023MS05025
Basic Research Operating Expenses Program for Colleges and Universities directly under the Inner Mongolia Autonomous Region · JY20230006, JY20220285
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