Influence of rotor impeller structure on performance improvement of suspended axial flow blood pumps.

IF 1.4 4区 医学 Q4 ENGINEERING, BIOMEDICAL International Journal of Artificial Organs Pub Date : 2024-03-01 Epub Date: 2024-03-07 DOI:10.1177/03913988231225128
Liang Wang, Zhong Yun, Xiaoyan Tang, Chuang Xiang
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Abstract

Background: The hydrodynamic suspension structure design of the axial blood pump impeller can avoid the problems associated with using mechanical bearings. However, the particular impeller structure will impact the hydraulic performance and hemolysis of the blood pump.

Method: This article combines computational fluid dynamics (CFD) with the Lagrange particle tracking method, aiming to improve the blood pump's hydraulic and hemolysis performance. It analyzes the flow characteristics and hemolysis performance inside the pump. It optimizes the taper of the impeller hub, the number of blades, and the inclination angle of the circumferential groove at the top of the blade.

Results: Under certain rotational speed conditions, an increase in the taper of the impeller hub or the number of blades can increase the pumping pressure of a blood pump, but an increase in the number of blades will reduce the flow rate. The design of circumferential grooves at the top of the blade can increase the pumping pressure to a certain extent, with little impact on the hemolysis performance. The impeller structure is optimized based on the estimated hemolysis of each impeller model blood pump. It could be seen that when the pump blood pressure and flow rate were reached, the optimized impeller speed was reduced by 11.4%, and the estimated hemolysis value was reduced by 10.5%.

Conclusion: In this paper, the rotor impeller structure of the blood pump was optimized to improve the hydraulic and hemolytic performance effectively, which can provide a reference for the related research of the axial flow blood pump using hydraulic suspension.

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转子叶轮结构对提高悬挂式轴流血泵性能的影响
背景:轴流式血泵叶轮的流体悬浮结构设计可以避免使用机械轴承带来的问题。然而,特殊的叶轮结构会影响血泵的水力性能和溶血情况:本文将计算流体动力学(CFD)与拉格朗日粒子跟踪法相结合,旨在改善血泵的水力和溶血性能。它分析了血泵内部的流动特性和溶血性能。它优化了叶轮轮毂的锥度、叶片数量和叶片顶部圆周凹槽的倾角:结果:在一定转速条件下,增加叶轮轮毂锥度或叶片数量可提高血泵的泵送压力,但增加叶片数量会降低流速。在叶片顶部设计圆周凹槽可在一定程度上增加泵压,但对溶血性能影响不大。根据各叶轮型号血泵的估计溶血量,对叶轮结构进行了优化。可以看出,当达到泵血压和流量时,优化后的叶轮转速降低了 11.4%,估计溶血值降低了 10.5%:本文对血泵转子叶轮结构进行了优化,有效改善了血泵的水力和溶血性能,可为采用水力悬浮的轴流式血泵的相关研究提供参考。
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来源期刊
International Journal of Artificial Organs
International Journal of Artificial Organs 医学-工程:生物医学
CiteScore
3.40
自引率
5.90%
发文量
92
审稿时长
3 months
期刊介绍: The International Journal of Artificial Organs (IJAO) publishes peer-reviewed research and clinical, experimental and theoretical, contributions to the field of artificial, bioartificial and tissue-engineered organs. The mission of the IJAO is to foster the development and optimization of artificial, bioartificial and tissue-engineered organs, for implantation or use in procedures, to treat functional deficits of all human tissues and organs.
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