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Bearing gap adjustment for improvement of levitation performance in a hydrodynamically levitated centrifugal blood pump

机译:调整轴承间隙以改善流体动力悬浮离心血泵的悬浮性能

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The purpose of the present study is to investigate a bearing gap adjustment for improvement of levitation performance in a hydrodynamically levitated centrifugal blood pump to realize a blood pump with a low hemolysis level. The impeller levitates axially by balancing a gravitational force, buoyancy, a magnetic force, and hydrodynamic forces on the top and bottom sides of the impeller. To adjust the levitation position of the impeller, the balance of acting forces on the impeller was adjusted by changing the shroud area on the bottom impeller. Three pumps having various shroud area were prepared as tested models: 817 mm (HH-S), 875 mm (HH-M) and 931 mm (HH-L). First, for evaluating the bearing gap adjustment, the bearing gap was estimated by calculating a balancing position of the acting forces on the impeller. We actually measured the gravitational force, buoyancy and the magnetic force, and numerically analyzed hydrodynamic forces on the top and bottom sides of the impeller. Second, to verify accuracy of the estimated bearing gap, the measurement test of the bearing gap was performed. Finally, an in-vitro hemolysis test was performed to evaluate a hemolysis level of the pump. As a result, bottom bearing gaps were estimated as 40 μm (HH-S), 60 μm (HH-M) and 238 μm (HH-L). In the measurement test, bottom bearing gaps were measured as 63 μm (HH-S), 219 μm (HH-M), and 231 μm (HH-L). The estimated bearing gaps had positively correlated with the measured bearing gaps in relation to the shroud area on the impeller. In the hemolysis test, hemolysis level in every model was almost equivalent to that of BPX-80, when the bearing gap was adjusted greater than 60 μm. We could adjust the bearing gap by changing the shroud area on the impeller for improvement of levitation performance to realize a blood pump with a low hemolysis level.
机译:本研究的目的是研究轴承间隙调节,以改善流体动力悬浮离心血泵的悬浮性能,以实现低溶血水平的血泵。通过平衡叶轮顶部和底部的重力,浮力,磁力和流体动力,叶轮轴向悬浮。为了调节叶轮的悬浮位置,通过改变底部叶轮上的护罩面积来调节叶轮上的作用力平衡。准备了三个具有不同覆盖面积的泵作为测试模型:817毫米(HH-S),875毫米(HH-M)和931毫米(HH-L)。首先,为了评估轴承间隙调整,通过计算叶轮上作用力的平衡位置来估算轴承间隙。我们实际上测量了重力,浮力和磁力,并对叶轮顶部和底部的流体动力进行了数值分析。其次,为了验证估计的轴承间隙的准确性,进行了轴承间隙的测量测试。最后,进行体外溶血试验以评估泵的溶血水平。结果,底部轴承间隙估计为40μm(HH-S),60μm(HH-M)和238μm(HH-L)。在测量测试中,测得的底部轴承间隙为63μm(HH-S),219μm(HH-M)和231μm(HH-L)。相对于叶轮上的护罩面积,估计的轴承间隙与测得的轴承间隙呈正相关。在溶血试验中,当轴承间隙调整为大于60μm时,每个模型中的溶血水平几乎与BPX-80相当。我们可以通过改变叶轮上的护罩面积来调节轴承间隙,以改善悬浮性能,从而实现低溶血水平的血泵。

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