Dynamic Control of Piezoelectric Sandwich Beams with Multi-Frequency Excitations

Authors

  • Régis Jean François Abia Nonga Laboratory of Mechanics, Materials and Photonics, National School of Agro-Industrial Sciences, ENSAI, Ngaoundéré
  • Adoukalt Chanceu Group of Mechanics, Materials and Acoustic, Department of Physics, Faculty of Sciences-EGCIM, Ngaoundéré, Cameroon
  • Wolfgang Nzie Department of Mechanical and Production Engineering, National School of Agro-Industrial Sciences, ENSAI, Ngaoundéré, Cameroon
  • Guy Edgard Ntamack Group of Mechanics, Materials and Acoustic, Department of Physics, Faculty of Sciences-EGCIM, Ngaoundéré, Cameroon

DOI:

https://doi.org/10.54536/ajise.v3i3.2848

Keywords:

Beam Vibration, Non-Linearities, Multi-Frequencies, Sandwich Beams

Abstract

In this work, we present a non-linear analysis of the dynamics of a sandwich beam with piezoelectric patches under multi-frequency excitations. The model takes into account geometrical non-linearities, piezoelectric non-linearities, and inertia. Hamilton’s principle is used to determine the electromechanical equation of motion, and Garlekin’s technique is used to determine the equivalent model of the piezoelectric generator. A mathematical methodology based on the multi-scale method for vibration control and stability is reviewed in this work to determine a system of amplitude and phase equations. The control of primary and secondary mode resonances is developed, and feedback effects are analyzed for small and large amplitudes of vibrations of sandwich beams. Frequency response curves are presented and discussed for various gain parameters.

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Published

2024-11-04

How to Cite

Abia Nonga, R. J. F., Chanceu, A., Nzie, W., & Ntamack, G. E. (2024). Dynamic Control of Piezoelectric Sandwich Beams with Multi-Frequency Excitations. American Journal of Innovation in Science and Engineering, 3(3), 69–76. https://doi.org/10.54536/ajise.v3i3.2848