Nonlinear free vibration and transient responses of porous functionally graded magneto-electro-elastic plates

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Date

2022

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Springer Science and Business Media Deutschland GmbH

Abstract

The geometrically nonlinear free vibration and transient response of porous functionally graded magneto-electro-elastic (PFG-MEE) plates are studied based on the first-order shear deformation (FSDT) theory, von Karman's nonlinear strain–displacement relations along with modified power law. With Hamilton's theory, the coupled equations of motion are obtained and analyzed by adapting finite element methods (FEM). Moreover, using Newmark's, Picard's, and Newton–Raphson methods, a porous FG-MEE plate's nonlinear and transient response is analyzed using MATLAB software. After validating the present study, the influence of porosity distribution, porosity index, boundary conditions, aspect ratios, and thickness to length ratios on the nonlinear frequency ratio and nonlinear transient response of porous FG-MEE plate is investigated. It is revealed that geometric parameters, porosity index, boundary conditions, and form of porosity distribution significantly influence the nonlinear frequency ratio and nonlinear transient deflections of porous FG-MEE plates. © 2021, Wroclaw University of Science and Technology.

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Keywords

Aspect ratio, Boundary conditions, Equations of motion, MATLAB, Porosity, Vibrations (mechanical), Frequency ratios, Functionally graded, Magneto-electro-elastic plates, Nonlinear free vibrations, Nonlinear frequency, Nonlinear frequency ratio, Porosity distributions, Porosity index, Porous functionally graded magneto-electro-elastic plate, Transient deflection, Transient analysis

Citation

Archives of Civil and Mechanical Engineering, 2022, 22, 1, pp. -

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