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Computational Fluid Dynamics Modeling of Gaseous Cavitation in Lubricating Vane Pumps: An Approach Based on Dimensional Analysis

机译:润滑叶片泵中气体空化的计算流体动力学建模:一种基于尺寸分析的方法

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This paper addresses the problem of computational fluid dynamics (CFD) modeling of gaseous cavitation (GC) in lubricating positive-displacement pumps (PDPs). It is important for designers and analysts to predict the dynamic features of air release/dissolution processes which characterize this phenomenon, along with their effects on filling capability and noise-vibration-harshness behavior of the machine. The focus is on the empirical tuning of the commercial homogeneous-flow cavitation model known as dissolved gas model (DGM). Considering an automotive case study of a balanced vane pump (BVP), the effects of air modeling on numerical predictions of discharge flow/pressure ripple and volumetric efficiency have been studied. The tuning time parameters of the model have been correlated to the machine Reynolds number as part of a simplified theoretical background based on dimensional analysis. Considering experimental data at different operating conditions, the tuned model has shown a good capacity in predicting the pressure ripple and the flowrate at the discharge of the pump.
机译:本文解决了润滑正排量泵(PDP)中气体空化(GC)的计算流体动力学(CFD)建模的问题。设计人员和分析师非常重要,以预测拟合这种现象的空气释放/溶出过程的动态特征,以及它们对机器的填充能力和噪声振动的影响。重点是在称为溶解气体模型(DGM)的商业均匀流量空化模型的实证调整。考虑到平衡叶片泵(BVP)的汽车案例研究,研究了空气建模对放电流量/压力纹波的数值预测和体积效率的影响。该模型的调谐时间参数与基于尺寸分析的简化理论背景的一部分相关的机器雷诺数。考虑到不同操作条件下的实验数据,调谐模型在预测泵排出时的压力纹波和流量的情况下表明了良好的容量。

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