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首页> 外文期刊>Artificial Organs >Numerical analysis of the inner flow field of a biocentrifugal blood pump.
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Numerical analysis of the inner flow field of a biocentrifugal blood pump.

机译:生物离心血泵内部流场的数值分析。

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Implantable ventricular assist devices have been regarded as a promising instrument in the clinical treatment of patients with severe heart failures. In this article, a three-dimensional model of the Kyoto-NTN magnetically suspended centrifugal blood pump was generated and a computational fluid dynamics solution of the inner flow field of the pump including the static pressure distributions, velocity profiles, and the shear stress distributions of the blood was presented. The results revealed that reverse flow generally occurred in the impeller blade channels during the operation of the pump, due to the imbalance of the flow and the pressure gradient generated in the blade channels. The flow pattern at the exit of the blade channels was varying with its angular positions in the pump. The reverse flow at the exit of the impeller blade channels was found to be closely related with the static pressure distribution in the volute passage. Higher pressure in the volute caused severe backflow from the volute into the blade channels. To clarify the effects of a moving impeller on the blood, shear stresses of the blood in the pump were investigated according to the simulation results. The studies indicated that at the beginning of the splitter plate and the cutwater, the highest shear stress exceeded 700 Pa. At other regions such as the inlet and outlet of the impeller blade channels and some regions in the volute passage, shear stresses were found to be about 200 Pa. These areas are believed to have a high possibility of rendering blood trauma.
机译:植入式心室辅助设备已被认为是严重心力衰竭患者临床治疗中的有前途的工具。在本文中,生成了Kyoto-NTN磁悬浮离心血泵的三维模型,并对该泵的内部流场进行了流体动力学计算,包括静压分布,速度分布和剪切应力分布。献血了。结果表明,在泵的运行过程中,由于流量和叶片通道中产生的压力梯度的不平衡,在叶轮叶片通道中通常会发生逆流。叶片通道出口处的流型随其在泵中的角位置而变化。发现叶轮叶片通道出口处的逆流与蜗壳通道中的静压分布密切相关。蜗壳中的较高压力导致严重的从蜗壳回流到叶片通道。为了阐明运动的叶轮对血液的影响,根据模拟结果研究了泵中血液的切应力。研究表明,在分流板和切水的开始处,最大剪切应力超过700 Pa。在其他区域,例如叶轮叶片通道的入口和出口以及蜗壳通道中的某些区域,发现剪切应力为:大约为200 Pa。这些区域被认为极有可能造成血液创伤。

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