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Performance enhancement of wing-based piezoaeroelastic energy harvesting through freeplay nonlinearity 被引量:3

Performance enhancement of wing-based piezoaeroelastic energy harvesting through freeplay nonlinearity
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摘要 We investigate experimentally how controlled freeplay nonlinearity affects harvesting energy from a wing-based piezoaeroelastic energy harvesting system. This system consisits of a rigid airfoil which is supported by a nonlinear torsional spring (freeplay) in the pitch degree of freedom and a linear fiexural spring in the plunge degree of freedom. By attaching a piezoelectric material (PSI-5A4E) to the plunge degree of freedom, we can convert aeroelastic vibrations to electrical energy. The focus of this study is placed on the effects of the freeplay nonlinearity gap on the behavior of the harvester in terms of cut-in speed and level of harvested power. Although the freeplay nonlinearity may result in subcritical Hopf bifurcations (catastrophic for real aircrafts), harvesting energy at low wind speeds is beneficial for designing piezoaeroelastic systems. It is demonstrated that increasing the freeplay nonlinearity gap can decrease the cut-in speed through a subcritical instability and gives the possibility to harvest energy at low wind speeds. The results also demonstrate that an optimum value of the load resistance exists, at which the level of the harvested power is maximized. We investigate experimentally how controlled freeplay nonlinearity affects harvesting energy from a wing-based piezoaeroelastic energy harvesting system. This system consisits of a rigid airfoil which is supported by a nonlinear torsional spring (freeplay) in the pitch degree of freedom and a linear fiexural spring in the plunge degree of freedom. By attaching a piezoelectric material (PSI-5A4E) to the plunge degree of freedom, we can convert aeroelastic vibrations to electrical energy. The focus of this study is placed on the effects of the freeplay nonlinearity gap on the behavior of the harvester in terms of cut-in speed and level of harvested power. Although the freeplay nonlinearity may result in subcritical Hopf bifurcations (catastrophic for real aircrafts), harvesting energy at low wind speeds is beneficial for designing piezoaeroelastic systems. It is demonstrated that increasing the freeplay nonlinearity gap can decrease the cut-in speed through a subcritical instability and gives the possibility to harvest energy at low wind speeds. The results also demonstrate that an optimum value of the load resistance exists, at which the level of the harvested power is maximized.
出处 《Theoretical & Applied Mechanics Letters》 CAS 2013年第4期14-17,共4页 力学快报(英文版)
关键词 energy harvesting freeplay nonlinearity piezoelectric material aeroelasticity experimental measurements energy harvesting, freeplay nonlinearity, piezoelectric material, aeroelasticity, experimental measurements
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  • 11. Kim, H. Jung, B. Lee, et al., Appl. Phys. Lett. 98, 214102 (2011).
  • 2A. F. Arrieta, P. Hagedorn, A. Erturk, et al., Appl. Phys. Lett. 91, 104102 (2010).
  • 3A. Abdelkefi, F. Najar, A. H. Nayfeh, et al., Smar. Mater. Struc. 20, 115007 (2011).
  • 4A. Karami and D. J. Inman, Appl. Phys. Lett. 100, 042901 (2012).
  • 5S. Ben Ayed, A. Abdelkefi, F. Najar, et aI., J. Intel. Mater. Syst. Struc., doi: 1O.1177/1045389X13489365 (2013).
  • 6M. Bryant and E. Garcia, Proceedings of SPIE 1288, 728 (2009).
  • 7S. D. Kwon, Appl. Phys. Lett. 91, 164102 (2010).
  • 8A. Erturk, W. G. R. Vieira, C. De Marqui, et al., Appl. Phys. Lett. 96, 184103 (2010).
  • 9A. Abdelkefi, A. H. Nayfeh, and M. R. Hajj, Nonl. Dyn. 61, 925 (2012).
  • 10A. Abdelkefi, A. H. Nayfeh, and M. R. Hajj, Nonl. Dyn. 68, 531 (2012).

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