4.7 Article

On the size-dependent behavior of a capacitive circular micro-plate considering the variable length-scale parameter

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PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijmecsci.2013.09.023

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MEMS; Circular micro-plate; Material length-scale; Modified couple stress theory; Stability

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This article deals with the effect of the intrinsic length-scale on the stability and fundamental frequency of a fully clamped circular micro-plate, which can be used as a RF MEMS resonator. A modified couple stress theory is utilized to model the micro-plate, considering the variable length-scale parameter. A variational formulation based on Hamilton's principle is used to obtain the nonlinear governing equation of motion. The static and dynamic pull-in phenomena, limiting the stable regions of capacitive resonators, are determined and compared to those obtained by the classical theory. The numerical results reveal that the intrinsic size dependence of materials leads to an increase in the pull-in voltage and natural frequency depending on the thickness of the micro-plate. Comparing these results with the experimental ones reveals that utilizing the fixed material length-scale leads to unrealistic results in some manner. (C) 2013 Elsevier Ltd. All rights reserved.

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