Power extraction from aeroelastic limit cycle oscillations

Published

Journal Article

Nonlinear limit cycle oscillations of an aeroelastic energy harvester are exploited for enhanced piezoelectric power generation from aerodynamic flows. Specifically, a flexible beam with piezoelectric laminates is excited by a uniform axial flow field in a manner analogous to a flapping flag such that the system delivers power to an electrical impedance load. Fluid-structure interaction is modeled by augmenting a system of nonlinear equations for an electroelastic beam with a discretized vortex-lattice potential flow model. Experimental results from a prototype aeroelastic energy harvester are also presented. Root mean square electrical power on the order of 2.5. mW was delivered below the flutter boundary of the test apparatus at a comparatively low wind speed of 27. m/s and a chord normalized limit cycle amplitude of 0.33. Moreover, subcritical limit cycles with chord normalized amplitudes of up to 0.46 were observed. Calculations indicate that the system tested here was able to access over 17% of the flow energy to which it was exposed. Methods for designing aeroelastic energy harvesters by exploiting nonlinear aeroelastic phenomena and potential improvements to existing relevant aerodynamic models are also discussed. © 2011 Elsevier Ltd.

Full Text

Duke Authors

Cited Authors

  • Dunnmon, JA; Stanton, SC; Mann, BP; Dowell, EH

Published Date

  • November 1, 2011

Published In

Volume / Issue

  • 27 / 8

Start / End Page

  • 1182 - 1198

Electronic International Standard Serial Number (EISSN)

  • 1095-8622

International Standard Serial Number (ISSN)

  • 0889-9746

Digital Object Identifier (DOI)

  • 10.1016/j.jfluidstructs.2011.02.003

Citation Source

  • Scopus