DocumentCode :
76730
Title :
Dynamics of MEMS Arches of Flexible Supports
Author :
Alkharabsheh, Sami A. ; Younis, Mohammad I.
Author_Institution :
Dept. of Mech. Eng., State Univ. of New York, Binghamton, NY, USA
Volume :
22
Issue :
1
fYear :
2013
fDate :
Feb. 2013
Firstpage :
216
Lastpage :
224
Abstract :
We present an investigation into the dynamics of microelectromechanical systems (MEMS) arches when actuated electrically including the effect of their flexible supports. Using a shallow-arch model with rotational and transversal springs at its boundaries, a reduced-order model is developed. Shooting technique is utilized to find periodic motions. The stability of the captured periodic motion is examined using the Floquet theory. Simulation results are shown for the forced-vibration response of an arch when excited by a dc electrostatic force superimposed to an ac harmonic load. The results show softening behavior and several jumps in the response during snap-through motion and pull-in. It is demonstrated that nonideal boundary conditions can have significant effect on the qualitative dynamical behavior of the MEMS arch. This may include lowering its natural frequencies from the expected range of operation and causing unpredictable snap through or dynamic pull-in. Simulation results are compared to experimental data obtained for an imperfect microfabricated clamped-clamped beam with initial curvature actuated electrically for the cases of primary and superharmonic resonances.
Keywords :
electrostatics; micromechanical devices; springs (mechanical); supports; vibrations; Floquet theory; MEMS arches; ac harmonic load; dc electrostatic force; dynamic pull-in; flexible supports; forced-vibration response; imperfect microfabricated clamped-clamped beam; microelectromechanical systems arches; nonideal boundary conditions; periodic motions; primary resonances; qualitative dynamical behavior; reduced-order model; rotational springs; shallow-arch model; shooting technique; snap-through motion; softening behavior; superharmonic resonances; transversal springs; Boundary conditions; Dynamics; Mathematical model; Micromechanical devices; Shape; Springs; Vibrations; Arch; electrostatic force; flexible supports; microelectromechanical systems (MEMS); nonlinear vibrations; resonator;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2012.2226926
Filename :
6362150
Link To Document :
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