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An Analytical Model for Squeeze-Film Damping of Perforated Torsional Microplates Resonators

机译:穿孔扭转微板谐振器挤压膜阻尼的解析模型

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摘要

Squeeze-film damping plays a significant role in the performance of micro-resonators because it determines their quality factors. Perforations in microstructures are often used to control the squeeze-film damping in micro-resonators. To model the perforation effects on the squeeze-film damping, many analytical models have been proposed, however, most of the previous models have been concerned with the squeeze-film damping due to the normal motion between the perforated vibrating plate and a fixed substrate, while there is a lack of works that model the squeeze-film damping of perforated torsion microplates, which are also widely used in MEMS devices. This paper presents an analytical model for the squeeze-film damping of perforated torsion microplates. The derivation in this paper is based on a modified Reynolds equation that includes compressibility and rarefaction effects. The pressure distribution under the vibrating plate is obtained using the double sine series. Closed-form expressions for the stiffness and the damping coefficients of the squeeze-film are derived. The accuracy of the model is verified by comparing its results with the finite element method (FEM) results and the experimental results available in the literature. The regime of validity and limitations of the present model are assessed.
机译:挤压膜阻尼在微谐振器的性能中起着重要作用,因为它决定了它们的品质因数。微结构中的穿孔通常用于控制微谐振器中的挤压膜阻尼。为了模拟穿孔对挤压膜阻尼的影响,已经提出了许多分析模型,但是,由于穿孔的振动板和固定基板之间的法向运动,大多数以前的模型都与挤压膜阻尼有关,尽管缺乏模型来模拟穿孔扭转微板的挤压膜阻尼,但该模型也广泛用于MEMS器件中。本文提出了多孔扭转微板挤压膜阻尼的解析模型。本文的推导基于修正的雷诺方程,该方程包括可压缩性和稀疏效应。振动板下方的压力分布是使用双正弦序列获得的。推导了挤压膜刚度和阻尼系数的封闭式表达式。通过将模型结果与有限元方法(FEM)结果和文献中提供的实验结果进行比较,可以验证模型的准确性。评估本模型的有效性和局限性。

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