考虑微动、接触力学和润滑界面的双唇平衡叶片泵建模和实验验证

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Zubin Mistry , Andrea Vacca , Sri Krishna Uppaluri
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引用次数: 0

摘要

本文介绍了平衡双唇叶片泵的模型配方以及验证模型的实验活动。仿真模型从几何模块开始,对给定设备的 CAD 图纸进行预处理。然后,该模型使用集合参数公式进行流体动力学分析,以求解设备内适当定义的控制体积内的压力。流体动力学模型与运动模块同时求解,运动模块使用牛顿运动定律评估叶片的平面运动,润滑界面求解器则基于雷诺方程。在叶片与凸轮环接触的位置应用了接触动力学公式和弹性流体力学关系。与实验结果的对比显示,体积效率和水力机械效率非常吻合。在所有测试速度和压力下,测得的出口压力波纹与模拟波纹一致。论文还显示了机器各部件产生的体积损失和功率损失的分布情况。所提出的方法计算成本低廉,可用于今后旨在提高此类设备性能的设计和优化研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling and experimental validation of twin lip balanced vane pump considering micromotions, contact mechanics, and lubricating interfaces

This paper presents a model formulation for balanced twin lip vane pumps and an experimental activity to validate the model. The simulation model begins with a geometrical module that preprocesses the CAD drawings of a given unit. The model then performs a fluid dynamic analysis using a lumped-parameter formulation to solve for the pressures inside properly defined control volumes within the unit. The fluid dynamic model is solved simultaneously with a motion module that evaluates the planar motions of the vanes using Newton’s law of motion and with a lubricating interface solver based on the Reynolds equation. Contact dynamics formulations and elastohydrodynamic relations are applied at the vane locations in contact with the cam ring. The comparison with experimental results highlights a good match in volumetric and hydromechanical efficiencies. The measured outlet pressure ripple matches the simulated one for all tested speeds and pressures. The paper also shows a breakdown of the distribution of volumetric and power losses arising from various components of the machine. The proposed methodology is computationally inexpensive, so it can be used in future design and optimization studies aimed at improving the performance of such units.

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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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