Suppr超能文献

蜗壳设计特征对体外膜肺氧合(ECMO)中使用的离心式血泵血液动力学性能和血液相容性的影响。

Impact of volute design features on hemodynamic performance and hemocompatibility of centrifugal blood pumps used in ECMO.

作者信息

Li Yuan, Wang Hongyu, Xi Yifeng, Sun Anqiang, Deng Xiaoyan, Chen Zengsheng, Fan Yubo

机构信息

Key Laboratory of Biomechanics and Mechanobiology (Beihang University), Ministry of Education, Beijing Advanced Innovation Center for Biomedical Engineering, School of Biological Science and Medical Engineering, Beihang University, Beijing, China.

出版信息

Artif Organs. 2023 Jan;47(1):88-104. doi: 10.1111/aor.14384. Epub 2022 Aug 26.

Abstract

BACKGROUND

The centrifugal blood pump volute has a significant impact on its hemodynamic performance hemocompatibility. Previous studies about the effect of volute design features on the performance of blood pumps are relatively few.

METHODS

In the present study, the computational fluid dynamics (CFD) method was utilized to evaluate the impact of volute design factors, including spiral start position, volute tongue radius, inlet height, size, shape and diffuser pipe angle on the hemolysis index and thrombogenic potential of the centrifugal blood pump.

RESULTS

Correlation analysis shows that flow losses affect the hemocompatibility of the blood pump by influencing shear stress and residence time. The closer the spiral start position of the volute, the better the hydraulic performance and hemocompatibility of the blood pump. Too large or too small volute inlet heights can worsen hydraulic performance and hemolysis, and higher volute inlet height can increase the thrombogenic potential. Small volute sizes exacerbate hemolysis and large volute sizes increase the thrombogenic risk, but volute size does not affect hydraulic performance. When the diffuser pipe is tangent to the base circle of the volute, the best hydraulic performance and hemolysis performance of the blood pump is achieved, but the thrombogenic potential is increased. The trapezoid volute has poor hydraulic performance and hemocompatibility. The round volute has the best hydraulic and hemolysis performance, but the thrombogenic potential is higher than that of the rectangle volute.

CONCLUSION

This study found that the hemolysis index shows a significant correlation with spiral start position, volute size, and diffuser pipe angle. Thrombogenic potential exhibits a good correlation with all the studied volute design features. The flow losses affect the hemocompatibility of the blood pump by influencing shear stress and residence time. The finding of this study can be used to guide the optimization of blood pump for improving the hemodynamic performance and hemocompatibility.

摘要

背景

离心式血泵蜗壳对其血液动力学性能和血液相容性有重大影响。以往关于蜗壳设计特征对血泵性能影响的研究相对较少。

方法

在本研究中,采用计算流体动力学(CFD)方法评估蜗壳设计因素,包括螺旋起始位置、蜗壳舌半径、入口高度、尺寸、形状和扩压器管角度对离心式血泵溶血指数和血栓形成潜力的影响。

结果

相关性分析表明,流动损失通过影响剪切应力和停留时间来影响血泵的血液相容性。蜗壳的螺旋起始位置越靠近,血泵的水力性能和血液相容性越好。蜗壳入口高度过大或过小都会使水力性能和溶血情况变差,较高的蜗壳入口高度会增加血栓形成潜力。较小的蜗壳尺寸会加剧溶血,较大的蜗壳尺寸会增加血栓形成风险,但蜗壳尺寸不影响水力性能。当扩压器管与蜗壳基圆相切时,血泵可实现最佳的水力性能和溶血性能,但血栓形成潜力会增加。梯形蜗壳的水力性能和血液相容性较差。圆形蜗壳具有最佳的水力和溶血性能,但血栓形成潜力高于矩形蜗壳。

结论

本研究发现溶血指数与螺旋起始位置、蜗壳尺寸和扩压器管角度显著相关。血栓形成潜力与所有研究的蜗壳设计特征均具有良好的相关性。流动损失通过影响剪切应力和停留时间来影响血泵的血液相容性。本研究结果可用于指导血泵优化,以改善血液动力学性能和血液相容性。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验