Piezoelectric energy harvesting from an oscillating wing

Abdessattar Abdelkefi, Muhammad R. Hajj, Mehdi Ghommem, Abdullah O. Nuhait

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

We investigate power levels that can be harvested from aeroelastic vibrations of an elastically-mounted wing that is supported by nonlinear springs. The energy is harvested by attaching a piezoelectric transducer to the plunge degree of freedom. A model that tightly couples the electromechanical model with the three dimensional unsteady vortex lattice method for the prediction of the unsteady aerodynamic loads is developed. The effects of the electrical load resistance, nonlinear torsional spring and eccentricity between the elastic axis and the gravity axis on the level of the harvested power are determined for a range of operating wind speeds. The results show that there is an optimum value of load resistance that maximizes the level of harvested power. The results also show that the nonlinear torsional spring plays an important role in enhancing the level of the harvested power. Furthermore, the harvested power can be increased by properly choosing the eccentricity. This analysis helps in the design of piezoaeroelastic energy harvesters that can operate optimally at prevailing air speeds.

Original languageEnglish
Title of host publication2012 8th International Symposium on Mechatronics and its Applications, ISMA 2012
DOIs
StatePublished - 2012
Event2012 8th International Symposium on Mechatronics and its Applications, ISMA 2012 - Sharjah, United Arab Emirates
Duration: 10 Apr 201212 Apr 2012

Publication series

Name2012 8th International Symposium on Mechatronics and its Applications, ISMA 2012

Conference

Conference2012 8th International Symposium on Mechatronics and its Applications, ISMA 2012
Country/TerritoryUnited Arab Emirates
CitySharjah
Period10/04/1212/04/12

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