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Investigations of Slip Effect on the Performance of Micro Gas Bearings and Stability of Micro Rotor-Bearing Systems

机译:滑动对微型气体轴承性能和微型转子轴承系统稳定性的影响研究

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摘要

Incorporating the velocity slip effect of the gas flow at the solid boundary, the performance and dynamic response of a micro gas-bearing-rotor system are investigated in this paper. For the characteristic length scale of the micro gas bearing, the gas flow in the bearing resides in the slip regime rather than in the continuum regime. The modified Reynolds equations of different slip models are presented. Gas pressure distribution and load carrying capacity are obtained by solving the Reynolds equations with finite different method (FDM). Comparing results from different models, it is found that the second order slip model agrees reasonably well with the benchmarked solutions obtained from the linearized Boltzmann equation. Therefore, dynamic coefficients derived from the second order slip model are employed to evaluate the linear dynamic stability and vibration characteristics of the system. Compared with the continuum flow model, the slip effect reduces dynamic coefficients of the micro gas bearing, and the threshold speed for stable operation is consequently raised. Also, dynamic analysis shows that the system responses change with variation of the operating parameters including the eccentricity ratio, the rotational speed, and the unbalance ratio.
机译:结合气体在固体边界的速度滑移效应,研究了微轴承转子系统的性能和动力响应。对于微型气体轴承的特征长度尺度,轴承中的气流停留在滑移状态,而不是连续状态。提出了不同滑模的修正雷诺方程。通过使用有限差分法(FDM)求解雷诺方程,可以获得气压分布和承载能力。比较不同模型的结果,发现二阶滑移模型与从线性化的玻耳兹曼方程获得的基准解相当吻合。因此,采用从二阶滑移模型导出的动态系数来评估系统的线性动态稳定性和振动特性。与连续流模型相比,滑移效应降低了微型气体轴承的动态系数,因此提高了稳定运行的阈值速度。此外,动态分析表明,系统响应随包括偏心率,转速和不平衡率在内的运行参数的变化而变化。

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