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Multiple-Scale Analysis of a Tunable Bi-Stable Piezoelectric Energy Harvester
Author(s) -
Feng Qian,
Nicole Abaid,
Lei Zuo
Publication year - 2020
Publication title -
asme letters in dynamic systems and control
Language(s) - English
Resource type - Journals
eISSN - 2689-6125
pISSN - 2689-6117
DOI - 10.1115/1.4046961
Subject(s) - cantilever , spring (device) , energy harvesting , piezoelectricity , stiffness , coupling (piping) , materials science , work (physics) , excitation , deformation (meteorology) , equations of motion , spring system , voltage , structural engineering , acoustics , mechanics , energy (signal processing) , mechanical engineering , engineering , physics , composite material , classical mechanics , electrical engineering , quantum mechanics
This paper presents the theoretical modeling and multiple-scale analysis of a novel piezoelectric energy harvester composed of a metal cantilever beam, piezoelectric films, and an axial preload spring at the moveable end. The harvester experiences mono- and bi-stable regimes as the stiffness of preload spring increases. The governing equations are derived with two high-order coupling terms induced by the axial motion. The literature shows that these high-order coupling terms lead to tedious calculations in the stability analysis of solutions. This work introduces an analytical strategy and the implementation of the multiple-scale method for the harvester in either the mono- or bi-stable status. Numerical simulations are performed to verify the analytical solutions. The influence of the electrical resistance, excitation level, and the spring pre-deformation on the voltage outputs and dynamics are investigated. The spring pre-deformation has a slight influence on the energy harvesting performance of the mono-stable system, but a large effect on that of the bi-stable system.

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