4.7 Article

Characterizing nonlinear characteristics of asymmetric tristable energy harvesters

Journal

MECHANICAL SYSTEMS AND SIGNAL PROCESSING
Volume 168, Issue -, Pages -

Publisher

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ymssp.2021.108612

Keywords

Asymmetry; Tristable; Semi-analytical approach; Melnikov method; Chaos

Funding

  1. National Natural Science of China [12072267, 11972296]
  2. Science, Technology and Innovation Commission of Shenzhen Municipality [JCYJ20190806153615091]
  3. International Science and Technology Cooperation Project of Guangdong Province [2021A0505030012]
  4. Fundamental Research Funds for the Central Universities [G2021KY0601]
  5. Aeronautical Science of China [2019ZA027010]
  6. Ministry of Science and Higher Education in Poland [DIALOG 0019/DLG/2019/10]

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This research aims to explore the nonlinear characteristics and energy harvesting performance of asymmetric tristable energy harvesters. By predicting chaotic motion using the Melnikov method and verifying it through numerical simulations, the study reveals the performance and response mechanism of asymmetric tristable energy harvesters.
Ambient vibration conditions greatly influence the response of nonlinear energy harvesters. Recently, simulations and experiments have verified that tristable energy harvesters have excellent energy harvesting performance and complex nonlinear characteristics, which are important in broadening their effective operating frequency range. The response mechanism of the asymmetric tristable energy harvester is more complex than its symmetric counterpart. Owing to the complexities of the former, streamlined design methodologies and methods remain scarce. To facilitate future innovation and research on asymmetric tristable energy harvesters, this paper examines their nonlinear characteristics and energy harvesting performance. The Melnikov method is employed to predict the occurrence of chaotic motion, which is verified by numerical simulations. The chaotic dynamical system theory provides a simplified analytical framework that provides deeper insights into the performance of the asymmetric tristable energy harvester. Compared with its symmetric counterpart, the asymmetric tristable energy harvester can more easily jump into the interwell motion and output the higher voltage under low-level excitations.

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