4.6 Article

Symmetry breaking in an initially curved micro beam loaded by a distributed electrostatic force

Journal

INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES
Volume 49, Issue 13, Pages 1864-1876

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijsolstr.2012.03.040

Keywords

Curved micro beam; Electrostatic force; Bistability; Snap-through buckling; MEMS/NEMS; Elastic foundation; Non-symmetric buckling criteria

Categories

Funding

  1. Israel Science Foundation (ISF) [1426/08]

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The asymmetric buckling of a shallow initially curved stress-free micro beam subjected to distributed nonlinear deflection-dependent electrostatic force is studied. In order to highlight the symmetry breaking phenomenon and the approach to its analysis, the subsidiary simplified problem of a curved beam attached to a linearly elastic foundation, and subjected to uniformly distributed mechanical load, which is independent of deflections, is addressed first. The analysis is based on a two degrees of freedom reduced order (RU) model resulting from the Galerkin decomposition with linear undamped eigenmodes of a straight beam used as the base functions. Simple approximate expressions are derived defining the geometric parameters of beams for which an asymmetric response bifurcates from the symmetric one. The necessary criterion establishes the conditions for the appearance of bifurcation points on the unstable branch of the symmetric limit point buckling curve; the sufficient criterion assures a realistic asymmetric buckling bifurcating from the stable branches of the curve. It is shown that while the symmetry breaking conditions are affected by the nonlinearity of the electrostatic force, its influence is less pronounced than in the case of the symmetric snap-through criterion. A comparison between the RO model results and those obtained by direct numerical analysis shows good agreement between the two and indicates that the obtained criteria can be used to predict non-symmetric buckling in electrostatically actuated bistable micro beams. (C) 2012 Elsevier Ltd. All rights reserved.

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