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CentriMag血泵的流体动力学和血液相容性的计算与实验评估

Computational and experimental evaluation of the fluid dynamics and hemocompatibility of the CentriMag blood pump.

作者信息

Zhang Juntao, Gellman Barry, Koert Andrew, Dasse Kurt A, Gilbert Richard J, Griffith Bartley P, Wu Zhongjun J

机构信息

Artificial Organs Laboratory, Department of Surgery, University of Maryland School of Medicine, Baltimore, 21201, USA.

出版信息

Artif Organs. 2006 Mar;30(3):168-77. doi: 10.1111/j.1525-1594.2006.00203.x.

Abstract

The CentriMag centrifugal blood pump is a newly developed ventricular assist device based on magnetically levitated bearingless rotor technology. A combined computational and experimental study was conducted to characterize the hemodynamic and hemocompatibility performances of this novel blood pump. Both the three-dimensional flow features of the CentriMag blood pump and its hemolytic characteristics were analyzed using computational fluid dynamics (CFD)-based modeling. The hydraulic pump performance and hemolysis level were quantified experimentally. The CFD simulation demonstrated a clean and streamlined flow field in the main components of the CentriMag blood pump. The predicted results by hemolysis model indicated no significant high shear stress regions in the pump. A comparison of CFD predictions and experimental results showed good agreements. The relatively large gap passages (1.5 mm) between the outer rotor walls and the lower housing cavity walls provide a very good surface washing through a secondary flow path while the shear stresses in the secondary flow paths are reduced, resulting in a low rate of hemolysis ([Normalized Index of Hemolysis] NIH = 0.0029 +/- 0.006) without a decrease of the pump's hydrodynamic performance (pressure head: 352 mm Hg at a flow rate of 5.0 L/min and a rotational speed of 4,000 rpm).

摘要

CentriMag离心式血泵是一种基于磁悬浮无轴承转子技术新开发的心室辅助装置。开展了一项计算与实验相结合的研究,以表征这种新型血泵的血流动力学和血液相容性性能。使用基于计算流体动力学(CFD)的模型分析了CentriMag血泵的三维流动特性及其溶血特性。通过实验对液压泵性能和溶血水平进行了量化。CFD模拟表明CentriMag血泵主要部件内的流场干净且流线型。溶血模型的预测结果表明血泵内无明显的高剪切应力区域。CFD预测结果与实验结果比较显示出良好的一致性。外转子壁与下部壳体腔壁之间相对较大的间隙通道(1.5毫米)通过二次流动路径提供了很好的表面冲洗,同时二次流动路径中的剪切应力降低,导致溶血率较低([溶血归一化指数]NIH = 0.0029±0.006),而血泵的流体动力性能未降低(在流速为5.0升/分钟、转速为4000转/分钟时压头:352毫米汞柱)。

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