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NUMERICAL STUDY OF THE FLOW CONDITION OF THE HYDRODYNAMIC LEVITATED MECHANICAL MICROPUMP

机译:水力悬浮机械微泵流动条件的数值研究

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Active liquid cooling is one of the most efficient and promising strategy for extreme thermal issues. As is the power source of the active liquid cooling system, a reliable and powerful micropump is urgently needed. In this study, we numerically studied the fluid flow of a hydrodynamic levitated micropump, considering the fluid flow in the motor. We found that the load capacity of the journal bearing is not influenced by the pump fluid flow. However, the pressure distribution of the journal bearing results in the dissymmetric pressure distribution in the spiral groove bearing, leading to worse stability of the axial levitation performance. The axial suspension force is at least 1.0N with the liquid film thickness of 15um and is sufficient for the rotor with weight of 30g to be stably levitated in the fluid. Owing to the pressure difference inside the pump, the balance point of the rotor should be lower than the theoretical design when the micropump is operating.
机译:主动液体冷却是解决极端散热问题的最有效,最有前途的策略之一。作为有源液体冷却系统的动力源,迫切需要可靠而强大的微型泵。在这项研究中,我们对液力悬浮微型泵的流体流动进行了数值研究,考虑了电动机中的流体流动。我们发现轴颈轴承的负载能力不受泵流体流量的影响。然而,轴颈轴承的压力分布导致螺旋槽轴承中的压力分布不对称,从而导致轴向悬浮性能的稳定性变差。轴向悬浮力在液膜厚度为15um时至少为1.0N,足以使重量为30g的转子稳定地悬浮在流体中。由于泵内部的压力差,当微型泵运行时,转子的平衡点应低于理论设计。

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