A nonlinear efficient layerwise finite element model for smart piezolaminated composites under strong applied electric field

Kapuria, S. ; Yaqoob Yasin, M. (2013) A nonlinear efficient layerwise finite element model for smart piezolaminated composites under strong applied electric field Smart Materials and Structures, 22 (5). Article ID 055021. ISSN 0964-1726

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Official URL: http://iopscience.iop.org/article/10.1088/0964-172...

Related URL: http://dx.doi.org/10.1088/0964-1726/22/5/055021

Abstract

In this work, we present an electromechanically coupled efficient layerwise finite element model for the static response of piezoelectric laminated composite and sandwich plates, considering the nonlinear behavior of piezoelectric materials under strong electric field. The nonlinear model is developed consistently using a variational principle, considering a rotationally invariant second order nonlinear constitutive relationship, and full electromechanical coupling. In the piezoelectric layer, the electric potential is approximated to have a quadratic variation across the thickness, as observed from exact three dimensional solutions, and the equipotential condition of electroded piezoelectric surfaces is modeled using the novel concept of an electric node. The results predicted by the nonlinear model compare very well with the experimental data available in the literature. The effect of the piezoelectric nonlinearity on the static response and deflection/stress control is studied for piezoelectric bimorph as well as hybrid laminated plates with isotropic, angle-ply composite and sandwich substrates. For high electric fields, the difference between the nonlinear and linear predictions is large, and cannot be neglected. The error in the prediction of the smeared counterpart of the present theory with the same number of primary displacement unknowns is also examined.

Item Type:Article
Source:Copyright of this article belongs to Institute of Physics.
ID Code:108931
Deposited On:31 Jan 2018 10:45
Last Modified:31 Jan 2018 10:45

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