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Squeeze-film damping of circular microplates vibrating in a tilting motion

机译:圆形微板在倾斜运动中的挤压膜阻尼

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摘要

Accurate determination of squeeze-film damping (SFD) plays an important role in the design of high-Q microresonators. Many analytical models for predicting SFD on the microplate vibrating in a tilting motion have been well established in the past. However, most of the previous works focused on the rectangular torsion microplates. There are few analytical models for the SFD on the circular microplate vibrating in the tilting motion. Only one model was developed by Xia et al. (Microfluid Nanofluid 19: 585-593, 2015). However, the gas in the air gap was treated as an incompressible gas in their model, and the perforation effect was not considered. This paper first studies the SFD on a non-perforated circular microplate vibrating in the tilting motion. The effects of both gas compressibility and rarefaction are considered in a modified Reynolds equation. The air pressure under the circular microplate is approximated by using Bessel series. A more accurate analytical expression for the damping and spring constants has been developed. Then, the model for the non-perforated microplates is extended to include the perforation effect. The present models are validated by comparison of the numerical results obtained by finite element method over a wide range of frequency and perforation ratios.
机译:压缩膜阻尼(SFD)的准确确定在高Q微谐振器的设计中起着重要作用。过去已经建立了许多用于预测微动板在倾斜运动中振动的SFD的分析模型。但是,大多数以前的工作都集中在矩形扭转微孔板上。圆形微孔板在倾斜运动中振动时,SFD的分析模型很少。 Xia等人仅开发了一种模型。 (Microfluid Nanofluid 19:585-593,2015)。但是,气隙中的气体在其模型中被视为不可压缩气体,因此未考虑穿孔效果。本文首先研究了在倾斜运动中振动的无孔圆形微孔板的SFD。在改进的雷诺方程中考虑了气体可压缩性和稀疏性的影响。圆形微孔板下的气压通过使用Bessel系列来估算。对于阻尼和弹簧常数,已经开发出了更精确的分析表达式。然后,对无孔微孔板的模型进行扩展以包括穿孔效果。通过比较在宽范围的频率和射孔率范围内通过有限元方法获得的数值结果,对本模型进行了验证。

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