Chan W K, Wong Y W, Yu S C M, Chua L P
School of Mechanical and Production Engineering, Nanyang Technological University, Republic of Singapore.
Artif Organs. 2002 Jun;26(6):534-42. doi: 10.1046/j.1525-1594.2002.06917.x.
This article presents computational studies on the effects of inlet guide vanes (IGVs) on the flow pattern and shear stress in a centrifugal blood pump. The effect of IGVs is to introduce a pre-swirl to fluid particles entering the impeller with the intention that the fluid particles will travel along the blade profile. Currently, most commercial centrifugal blood pumps employ straight radial impeller blades that are not hydrodynamically ideal for a good flow pattern within the blade passage. Flow separation and formation of vortices within the blade passage are believed to increase the degree of hemolysis and thrombosis. These are causes for blood clotting that will lead to malfunctioning of ventricular assist devices. Four IGVs of different geometrical profiles have been numerically investigated using a commercial software program CFX-Tascflow. The pump is operated at 2,000 rpm, and the results revealed that the relative flow patterns in the blade passage have been dramatically altered. The size of the vortices was reduced, and the pressure contours indicated a gradual rise from the impeller leading edge to the trailing edge. However, inclusion of IGV causes a drop in the pressure head generated. Higher frictional losses are incurred as fluid particles passed through the IGV. In addition, the IGV modifies the inlet velocity triangles, and this also contributes to a drop in the pressure head generated that is consistent with Euler's pump theory. The change in the flow patterns and the gradual variation of the pressure contours have led to lower shear stress within the blade passages as compared to the case without IGVs.
本文介绍了关于进口导叶(IGV)对离心式血泵内流型和剪切应力影响的计算研究。进口导叶的作用是给进入叶轮的流体颗粒引入预旋,目的是使流体颗粒沿叶片型线流动。目前,大多数商用离心式血泵采用直径向叶轮叶片,就叶片通道内良好的流型而言,这种叶片在流体动力学方面并非理想。据信,叶片通道内的流动分离和涡流形成会增加溶血和血栓形成的程度。这些都是导致血液凝固的原因,会导致心室辅助装置出现故障。使用商业软件CFX-Tascflow对四种不同几何形状的进口导叶进行了数值研究。该泵以2000转/分钟的转速运行,结果表明叶片通道内的相对流型发生了显著变化。涡流尺寸减小,压力等值线表明从叶轮前缘到后缘压力逐渐升高。然而,加入进口导叶会导致所产生的压头下降。当流体颗粒通过进口导叶时会产生更高的摩擦损失。此外,进口导叶改变了进口速度三角形,这也导致所产生的压头下降,这与欧拉泵理论一致。与没有进口导叶的情况相比,流型的变化和压力等值线的逐渐变化导致叶片通道内的剪切应力降低。