CNS 2016: Sensors pp 249-257 | Cite as

Modeling Investigation of a Nonlinear Vibrational Energy Harvester

  • Bruno Andò
  • Salvatore Baglio
  • Adi Bulsara
  • Vincenzo Marletta
  • Antonio Pistorio
Conference paper
Part of the Lecture Notes in Electrical Engineering book series (LNEE, volume 431)

Abstract

In last years the authors have investigated nonlinear systems for vibrational energy harvesting. Nonlinear configurations have been demonstrated that, under the proper conditions, can provide better performance, compared to linear resonant oscillators, in terms of the amount of energy extracted from environmental wide spectrum mechanical vibrations. In particular, the authors presented the results of investigations on a system exploiting the advantages of a nonlinear bistable Snap-Through-Buckling (STB) configuration and two piezoelectric transducers placed at the locations of the two stable states (the position of the two minima of the bistable potential underpinning the dynamics of the system). The device investigated was shown to be capable of providing sufficient electrical energy to power an RF transmitter. However, in order to properly design the harvester an analytical model is necessary. The authors are investigating different nonlinear models. In this work, a comparison between two different theoretical models for the STB beam is discussed.

Keywords

Nonlinear energy harvester Bistable systems Snap through buckling Piezoelectric materials Modeling 

Notes

Acknowledgements

The authors gratefully acknowledge support from the US Office of Naval Research (ONR-30), and the Office of Naval Research Global (ONRG). This research activity is developed under the grant “Advanced nonlinear energy harvesters in the mesoscale: exploiting a Snap-Through Buckling configuration, for the autonomous powering of electronic devices. ONR_N62909-15-1-2015”.

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Copyright information

© Springer International Publishing AG 2018

Authors and Affiliations

  • Bruno Andò
    • 1
  • Salvatore Baglio
    • 1
  • Adi Bulsara
    • 2
  • Vincenzo Marletta
    • 1
  • Antonio Pistorio
    • 1
  1. 1.DIEEIUniversità di CataniaCataniaItaly
  2. 2.Space and Naval Warfare Systems Center PacificSan DiegoUSA

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