叶片角度分布对小型轴向血泵血流动力学和血液相容性影响的研究。

IF 1.4 4区 医学 Q4 ENGINEERING, BIOMEDICAL
Zhi-Peng He, Shen Lv, Guang-Mao Liu, Sheng-Shou Hu
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引用次数: 0

摘要

小型轴向血泵叶片结构影响了泵内的高剪切应力和湍流。影响了泵的血流动力学和血液相容性。利用计算流体力学方法对小型轴向血泵叶片进行了设计。在设计工况(45000转/分转速和3l /min流量)下,最佳的叶片角分布必须改善血流动力学和血液相容性。首先,叶片进口角β1在-100°到-220°范围内变化。其次,利用最优β1,通过在不同曲率位置设置不同曲率来改变叶片角分布。最后分析了叶片角分布参数与血流动力学、溶血和血栓形成风险的关系。结果表明,角度分布应避免正曲率,且“负曲率百分比绝对值应随曲率位置的增加而逐渐增大”。CFD和实验结果表明,与原叶轮相比,优化后的叶轮压头提高17.4%,水力效率提高2.1%,溶血指数降低8.4%,体积平均标化活化血小板浓度降低5.3%。cfd引导下的叶片角度优化可以改善小型轴流式血泵的血流动力学和血液相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of the influence of blade angle distribution on hemodynamic and hemocompatibility performance in a miniature axial blood pump.

High shear stress and turbulence in a miniature axial blood pump are affected by the pump's blade structure. which impacts the pump's hemodynamics and hemocompatibility performance. This study designed blades for a miniature axial blood pump via computational fluid dynamics (CFD). The optimal blade angle distribution must improve hemodynamic and hemocompatibility performance under the designed operating conditions (45,000 rpm rotational speed and 3 L/min flow rate). First, the blade inlet angles β1 were varied from -100° to -220°. Second, using the optimal β1, the blade angle distribution was changed by setting different curvatures at different curvature positions. Finally, the relationships among blade angle distribution parameters and hemodynamic, hemolysis, and thrombosis risk were analyzed. The results indicated that angle distribution should avoid positive curvature, and that "the absolute value of negative curvature percentage should increase progressively with the increasing of curvature position." Compared with the original impeller, the CFD and experimental results revealed an optimized impeller with a 17.4% increase in pressure head, a 2.1% increase in hydraulic efficiency, an 8.4% decrease in hemolysis index, and a 5.3% decrease in volume-averaged scaled activated platelet concentration. CFD-guided blade angle optimization can improve the hemodynamic and hemocompatibility performance of miniature axial blood pumps.

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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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