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PMID: 37972458 Published · ppublish English Journal Article

An in silico analysis of unsteady flow structures in a microaxial blood pump under a pulsating rotation speed.

Computer methods and programs in biomedicine ·Vol. 243 ·2024-01-00 ·页码 107919

Chen C, Zhang M, Hao P, He F, Zhang X

Abstract

Ventricular assist devices (VADs) are generally designed to perform continuous flow. However, it has been proven that continuous flow, which is not a physiological hemodynamic state, may cause severe complications such as gastrointestinal bleeding, pulmonary hypertension, and ventricular suction. For these reasons, many pulsating blood pump control strategies have been proposed and have the potential for application in percutaneous ventricular assist devices (pVADs) or microaxial blood pumps. A few cases report extra hemolysis when introducing pulsating speed, while none involve blood pumps. This research's primary purpose is to evaluate the potential hemolysis of pVAD under pulsating flow conditions. First, the pulsating flow state is deduced using a heart failure model and varying speed. The heart model is established according to the pathology state collected from a clinical check. The rotation speed and boundary physical state are set to fit the heart failure model. The computational fluid dynamics (CFD) method with the hemolysis prediction model is performed. Furthermore, we used proper orthogonal decomposition (POD) analysis to reconstruct the flow field and obtain more details about shearing and transporting effects. (1) As a variable rotational speed was introduced, no significant gain in hemolysis accumulation appeared in pVAD. This is quite different from long-term implantable VADs. (2) Pulsation affects hemolysis mainly through pressure (or normal stress). Variable rotational speed affects hemolysis mainly through flow instability. (3) Variable rotational speed will increase the instability and influence hemolysis by transporting and shearing effects, while the transporting effect is more significant. The unsteady flow state will affect the spatial distribution of hemolysis, which should be taken into account during control strategy and impeller shape design.

Keywords
Blood pump Computational fluid dynamics Heart modeling and simulation Hemolysis Pulsating flow
MeSH 主题词
Humans Hemolysis Rotation Heart-Assist Devices Hemodynamics Heart Failure
作者与单位
共 5 位作者,点击展开单位 / ORCID
Chen Chenghan
Applied Mechanics Laboratory, Department of Engineering Mechanics, School of Aerospace Engineering, Tsinghua University, Beijing, PR China; Department of Cardiovascular Surgery, First Hospital of Tsinghua University, Beijing, PR China.
Zhang Mingkui
Department of Cardiovascular Surgery, First Hospital of Tsinghua University, Beijing, PR China.
Hao Pengfei
Applied Mechanics Laboratory, Department of Engineering Mechanics, School of Aerospace Engineering, Tsinghua University, Beijing, PR China.
He Feng
Applied Mechanics Laboratory, Department of Engineering Mechanics, School of Aerospace Engineering, Tsinghua University, Beijing, PR China.
Zhang Xiwen
Applied Mechanics Laboratory, Department of Engineering Mechanics, School of Aerospace Engineering, Tsinghua University, Beijing, PR China. Electronic address: [email protected].
Article Info
Journal
Computer methods and programs in biomedicine
Abbr.
Comput Methods Programs Biomed
ISSN
1872-7565
Corresponding email
Published
2024-01-00
电子出版
2023-00-07
页码
107919
Language
English
Country/Region
Ireland
NLM ID
8506513
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