JOURNAL ARTICLE

A reduced-order model for electrically actuated microplates

Xiaopeng ZhaoEihab Abdel‐RahmanAli H. Nayfeh

Year: 2004 Journal:   Journal of Micromechanics and Microengineering Vol: 14 (7)Pages: 900-906   Publisher: IOP Publishing

Abstract

We present a reduced-order model for electrically actuated microplate-based MEMS. The model accounts for the electric force nonlinearity and the mid-plane stretching of the plate. The linear undamped vibration modes are found numerically using the hierarchical finite-element method. These mode shapes are used in a Galerkin approximation to reduce the partial-differential equations of motion and associated boundary conditions into a finite-dimensional system of nonlinearly coupled second-order ordinary-differential equations. The model is validated by comparing its results with those obtained experimentally and those obtained by solving the distributed-parameter system. The model is used to calculate the deflection of the microplate under dc voltages and study the pull-in phenomenon. The natural frequencies and mode shapes around these deflected positions of the microplate are calculated by solving the linear eigenvalue problem. The effects of various design parameters on both the static and dynamic characteristics of microplates are studied. The reduced-order model provides an effective and accurate design tool, useful in design optimization and determination of the stable operation range of MEMS devices.

Keywords:
Galerkin method Finite element method Ordinary differential equation Boundary value problem Nonlinear system Deflection (physics) Microelectromechanical systems Vibration Equations of motion Partial differential equation Eigenvalues and eigenvectors Voltage Control theory (sociology) Normal mode Mathematical analysis Mechanics Physics Differential equation Mathematics Engineering Acoustics Structural engineering Classical mechanics Computer science

Metrics

122
Cited By
3.25
FWCI (Field Weighted Citation Impact)
17
Refs
0.93
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced MEMS and NEMS Technologies
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Mechanical and Optical Resonators
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics
Acoustic Wave Resonator Technologies
Physical Sciences →  Engineering →  Biomedical Engineering

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