The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain

Extensive modeling and simulation of the damping phenomenon, electrostatic actuation, and structural vibration analysis are performed. The governing partial differential equations of cantilever plate are obtained, and the resonant frequencies are calculated from the equilibrium equations. The dampin...

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Main Authors: Jianlian Cheng, Kai Li, Zhuang Zhang, Yufeng Gu
Format: Article
Language:English
Published: SAGE Publishing 2018-12-01
Series:Journal of Low Frequency Noise, Vibration and Active Control
Online Access:https://doi.org/10.1177/1461348418765954
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spelling doaj-9323814e80b244888a19a77e98b02ca02020-11-25T03:01:43ZengSAGE PublishingJournal of Low Frequency Noise, Vibration and Active Control1461-34842048-40462018-12-013710.1177/1461348418765954The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domainJianlian ChengKai LiZhuang ZhangYufeng GuExtensive modeling and simulation of the damping phenomenon, electrostatic actuation, and structural vibration analysis are performed. The governing partial differential equations of cantilever plate are obtained, and the resonant frequencies are calculated from the equilibrium equations. The damping forces of squeeze film are analyzed by obtaining the damping ratio and spring constant. Electrostatic actuation is applied to oscillate the cantilever to ensure that the displacement of the plate is above the thermal noise floor. Electrostatic actuating forces, displacement, and capacitance are calculated both numerically and analytically from the Poisson’s equations. Squeeze film damping effects naturally occur if structures are subjected to loading situations such that a very thin film of fluid is trapped within structural joints, interfaces, etc. An accurate estimate of squeeze film effects is important to predict the performance of dynamic structures. Squeeze film effects are simulated by the finite element method. The accuracy of the compact model is studied by comparing its response to the numerical results calculated with the finite element method. The agreement is very good in a wide frequency band. The numerical study and the compact model are directly applicable in predicting the damping force and damping factors of squeeze film.https://doi.org/10.1177/1461348418765954
collection DOAJ
language English
format Article
sources DOAJ
author Jianlian Cheng
Kai Li
Zhuang Zhang
Yufeng Gu
spellingShingle Jianlian Cheng
Kai Li
Zhuang Zhang
Yufeng Gu
The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
Journal of Low Frequency Noise, Vibration and Active Control
author_facet Jianlian Cheng
Kai Li
Zhuang Zhang
Yufeng Gu
author_sort Jianlian Cheng
title The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
title_short The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
title_full The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
title_fullStr The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
title_full_unstemmed The oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
title_sort oscillating and electrostatic characteristics of microelectromechanical system cantilever structure analyzed based on the air gap domain
publisher SAGE Publishing
series Journal of Low Frequency Noise, Vibration and Active Control
issn 1461-3484
2048-4046
publishDate 2018-12-01
description Extensive modeling and simulation of the damping phenomenon, electrostatic actuation, and structural vibration analysis are performed. The governing partial differential equations of cantilever plate are obtained, and the resonant frequencies are calculated from the equilibrium equations. The damping forces of squeeze film are analyzed by obtaining the damping ratio and spring constant. Electrostatic actuation is applied to oscillate the cantilever to ensure that the displacement of the plate is above the thermal noise floor. Electrostatic actuating forces, displacement, and capacitance are calculated both numerically and analytically from the Poisson’s equations. Squeeze film damping effects naturally occur if structures are subjected to loading situations such that a very thin film of fluid is trapped within structural joints, interfaces, etc. An accurate estimate of squeeze film effects is important to predict the performance of dynamic structures. Squeeze film effects are simulated by the finite element method. The accuracy of the compact model is studied by comparing its response to the numerical results calculated with the finite element method. The agreement is very good in a wide frequency band. The numerical study and the compact model are directly applicable in predicting the damping force and damping factors of squeeze film.
url https://doi.org/10.1177/1461348418765954
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