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一种轴流血泵模型中的牛顿和非牛顿流动动力学的实验研究。

An experimental study of Newtonian and non-Newtonian flow dynamics in an axial blood pump model.

机构信息

School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an, China.

出版信息

Artif Organs. 2012 Apr;36(4):429-33. doi: 10.1111/j.1525-1594.2011.01354.x. Epub 2011 Oct 14.

Abstract

The head curves of a 1.5:1 new axial blood pump model were measured using five working fluids at five rotational speeds. The working fluids were water, a 39wt% aqueous glycerin solution (GS), and three aqueous xanthan gum solutions (XGSs) with different concentrations. The flow velocities and shear stresses in the mechanical clearance between the casing and rotor were investigated using a laser Doppler velocimeter and hot-film sensor. At every rotational speed, the experiment in which viscous GS was used in the pump model showed a head curve lower than that obtained using water, whereas the head obtained using viscoelastic XGS was higher than that generated using water. A maximum difference of 65.8% between the heads measured in the 0.06% XGS and GS experiments was detected. The higher head produced by the XGS may have originated from the drag-reduction effect of XGS viscoelasticity. The measurements showed that a reverse washout flow at a velocity of 0.05-0.11m/s occurs in the clearance. This reverse washout flow is crucial to preventing flow stagnation and accompanying thrombus formation. The wall shear stress and the Taylor number of the rotating Couette-like flow in the clearance both indicated that it is a turbulent flow.

摘要

使用五种工作液在五个转速下测量了 1.5:1 新型轴向血液泵模型的头曲线。工作液为水、39wt%的水合甘油溶液(GS)和三种不同浓度的水合黄原胶溶液(XGS)。使用激光多普勒测速仪和热线风速仪研究了机壳和转子之间的机械间隙中的流速和剪切应力。在每个转速下,在泵模型中使用粘性 GS 的实验显示出的扬程曲线低于使用水的实验,而使用粘弹性 XGS 的扬程高于使用水的实验。在 0.06% XGS 和 GS 实验中测量的扬程最大差异为 65.8%。XGS 产生的较高扬程可能源于 XGS 粘弹性的阻力减少效应。测量表明,在间隙中会以 0.05-0.11m/s 的速度发生反向冲洗流。这种反向冲洗流对于防止流动停滞和伴随的血栓形成至关重要。间隙中旋转的类库埃特流动的壁面剪切应力和泰勒数都表明这是一种湍流。

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