Squeeze Film Damping Effect of the Micro Airflow in a Sealed Chamber

L. Li, R. Zhu, Zhaoying Zhou
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Abstract

The squeeze film damping effect generating from the sealed air gap between a vibrating circular thin plate and a fixed substrate is analyzed in this paper. Both the Bessel series technique and the Rayleigh-Ritz energy method are utilized to investigate the gas damping effect on the micro airflow in a sealed chamber. The air pressure distribution of the squeeze film air damping is determined by solving the nondimensionalized and linearized isothermal compressible Reynolds' equation and combined with the sealed pressure boundary condition. The coupled model of piezoelectric-Si film-micro airflow is derived according to the Rayleigh-Ritz energy method. The air damping factor is extracted. By adding and removing the air damping factor, there is no obvious variation of the resonance frequency of piezoelectric-Si film-airflow coupled vibration. The relation between the bending displacement and the cavity depth indicates that the effects of air damping become more intensive with the reducing of cavity depth
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密封腔室中微气流的挤压膜阻尼效应
本文分析了振动圆形薄板与固定基板之间密封气隙产生的挤压膜阻尼效应。采用贝塞尔级数法和瑞利-里兹能量法研究了密闭腔室中气体阻尼对微气流的影响。通过求解无量纲化、线性化的等温可压缩雷诺方程,结合密封压力边界条件,确定了挤压膜空气阻尼的气压分布。根据瑞利-里兹能量法推导了压电-硅膜微气流耦合模型。提取了空气阻尼系数。通过添加和去除空气阻尼因子,压电-硅膜-气流耦合振动的共振频率没有明显变化。弯曲位移与空腔深度的关系表明,空气阻尼的影响随着空腔深度的减小而增强
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