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Article
Exciting and Harvesting Vibrational States in Harmonically Driven Granular Chains
Mathematics and Statistics Department Faculty Publication Series
  • C. Chong, Swiss Federal Institute of Technology
  • E. Kim, University of Washington
  • E. G. Charalampidis, University of Massachusetts, Amherst
  • H. Kim, University of Washington
  • F. Li, University of Washington
  • Panayotis G. Kevrekidis, University of Massachusetts, Amherst
  • J. Lydon, Swiss Federal Institute of Technology
  • C. Daraio, Swiss Federal Institute of Technology
  • J. Yang, University of Washington
Publication Date
2015
Abstract

This article explores the excitation of different vibrational states in a spatially extended dynamical system through theory and experiment. As a prototypical example, we consider a one-dimensional packing of spherical particles (a so-called granular chain) that is subject to harmonic boundary excitation. The combination of the multi-modal nature of the system and the strong coupling between the particles due to the nonlinear Hertzian contact force leads to broad regions in frequency where different vibrational states are possible. In certain parametric regions, we demonstrate that the Nonlinear Schrodinger (NLS) equation predicts the corresponding ¨ modes fairly well. We propose that nonlinear multi-modal systems can be useful in vibration energy harvesting and discuss a prototypical framework for its realization. The electromechanical model we derive predicts accurately the conversion from mechanical to electrical energy observed in the experiments.

Disciplines
Pages
12
Citation Information
C. Chong, E. Kim, E. G. Charalampidis, H. Kim, et al.. "Exciting and Harvesting Vibrational States in Harmonically Driven Granular Chains" (2015)
Available at: http://works.bepress.com/efstathios-charalampidis/3/