A higher order coupled frequency characteristics study of smart magneto-electro-elastic composite plates with cut-outs using finite element methods

Received: 14 Dec 2020, Revised: 09 Jan 2021, Accepted: 22 Mar 2021, Available online: 29 Mar 2021, Version of Record: 29 Mar 2021

M. Vinyas a, D. Harursampath a, T. Nguyen Thoi b c
a
Nonlinear Multifunctional Composites Analysis and Design (NMCAD) Laboratory, Department of Aerospace Engineering, Indian Institute of Science, Bangalore, 560012, India
b
Division of Computational Mathematics and Engineering, Institute for Computational Science, Ton Duc Thang University, Ho Chi Minh City, Viet Nam
c
Faculty of Civil Engineering, Ton Duc Thang University, Ho Chi Minh City, Viet Nam

Abstract


This article deals with investigating the effect of cut-outs on the natural frequencies of magneto-electro-elastic (MEE) plates incorporating finite element methods based on higher order shear deformation theory (HSDT). In order to consider the influence of cut-out, the energy of the cut-out domain is subtracted from the total energy of the entire plate. The governing equations of motions are derived through incorporating Hamilton’s principle and the solution is obtained using condensation technique. The proposed numerical formulation is verified with the results of previously published literature as well as the numerical software. In addition, this research focuses on evaluating the effect of geometrical skewness and boundary conditions on the frequency response. The influence of cut-outs on the degree of coupling between magnetic, electric and elastic fields is also investigated.

Keywords
Cut-out
Magneto-electro-elastic
Natural frequency
Higher order shear deformation
Coupling



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“Authors state no conflict of interest”


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This research received no external funding or grants


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