往复式血液泵的数值模拟:阀门运动和泄漏流量对溶血性能的影响

IF 1.5 4区 工程技术 Q3 ENGINEERING, MECHANICAL Iranian Journal of Science and Technology-Transactions of Mechanical Engineering Pub Date : 2024-07-03 DOI:10.1007/s40997-024-00784-9
Amir Hossein Vakilzadeh, Amirhossein Bagheri Sarvestani, Reza Kamali, Kourosh Javaherdeh
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引用次数: 0

摘要

左心室辅助装置(LVAD)是一种血液泵,可增强心力衰竭晚期患者左心室底部的泵血能力。本研究旨在详细调查与 LVAD 相关的溶血特性,同时仔细研究瓣膜对往复式血泵中血液损伤的影响。为此,本研究采用数值方法,通过捕捉瓣膜的全范围运动来探索瓣膜运动和泄漏流这两个红细胞损伤(溶血)的关键原因的影响。为了预测血流和溶血指数,相应的随时间变化的非线性偏微分方程被整合到调控公式系统中。流体动力学特性由纳维-斯托克斯方程导出,而溶血程度则通过使用欧拉传输方法纳入两个额外的标量传输方程来确定。为了模拟阀门关闭,我们考虑了不同的方法,即动态网格技术、粘度阀门关闭模型以及两者的结合。研究结果表明,溶血指数在入口区域最小,在瓣膜和间隙子域获得最大值。此外,结果表明,在特定雷诺数下,溶血指数通过同时增加和降低频率而有利地降低。据观察,气门运动和气门泄漏流分别导致溶血指数明显增加一个数量级和两个数量级。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A Numerical Simulation of Reciprocating Blood Pump: Effect of Valve Movement and Leakage Flow on Hemolytic Performance

The left ventricular assist device (LVAD) is a blood pump that boosts the pumping ability of the bottom left chamber of the heart in patients with advanced stage of heart failure. This study aims to present a detailed investigation into the hemolytic characteristics associated with an LVAD, while scrutinizing the impact of valves on blood damage in a reciprocating blood pump. To this end, a numerical approach is utilized to explore the effect of valves movement and leakage flow as the two critical causes of red blood cell damage (hemolysis) by capturing the full range of the valve motion. To predict both blood flow and the hemolysis index, corresponding time-dependent nonlinear partial differential equations are integrated into the governing formulation system. The fluid dynamic characteristics are derived from the Navier–Stokes equations, while the degree of hemolysis is determined by incorporating two additional scalar transport equations using an Eulerian transport method. To simulate valves closure, we consider different methods namely, dynamic mesh technique, viscosity valve closure model and the combination of both. The findings reveal that the hemolysis index is minimum at the inlet region and acquires its maximum value at the valves and clearance subdomains. Moreover, the results depict a favorable reduction in the hemolysis index through a simultaneous increase in frequency and decrease at a specific Reynolds number. It is observed that valves movement and valves leakage flow lead to a sensible one and two order of magnitude increase in the hemolysis index, respectively.

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来源期刊
CiteScore
2.90
自引率
7.70%
发文量
76
审稿时长
>12 weeks
期刊介绍: Transactions of Mechanical Engineering is to foster the growth of scientific research in all branches of mechanical engineering and its related grounds and to provide a medium by means of which the fruits of these researches may be brought to the attentionof the world’s scientific communities. The journal has the focus on the frontier topics in the theoretical, mathematical, numerical, experimental and scientific developments in mechanical engineering as well as applications of established techniques to new domains in various mechanical engineering disciplines such as: Solid Mechanics, Kinematics, Dynamics Vibration and Control, Fluids Mechanics, Thermodynamics and Heat Transfer, Energy and Environment, Computational Mechanics, Bio Micro and Nano Mechanics and Design and Materials Engineering & Manufacturing. The editors will welcome papers from all professors and researchers from universities, research centers, organizations, companies and industries from all over the world in the hope that this will advance the scientific standards of the journal and provide a channel of communication between Iranian Scholars and their colleague in other parts of the world.
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