Piezoelectric MicroElectroMechanical systems (MEMS) energy harvesting is an attractive technology for harvesting small magnitudes of energy from ambient vibrations. Increasing the operating frequency bandwidth of such devices is one of the major issues for real world applications. A MEMS-scale doubly clamped nonlinear beam resonator is designed and developed to demonstrate very wide bandwidth and high power density. In this paper a first complete theoretical discussion of nonlinear resonating piezoelectric energy harvesting is provided. The sectional behaviour of the beam is studied through the Classical Lamination Theory (CLT) specifically modified to introduce the piezoelectric coupling and nonlinear Green-Lagrange strain tensor. A lumped parameters model is built through Rayleigh-Ritz Method and the resulting nonlinear coupled equations are solved in the frequency domain through the Harmonic Balance Method (HBM). Finally, the influence of external load resistance on the dynamic behaviour is studied. The theoretical model shows that the power generation of nonlinear resonant harvesters is spread out on a wider bandwidth but it is theoretically bounded by the mechanical damping of the dynamic system as for linear resonating harvesters.

Modelling of a bridge-shaped nonlinear piezoelectric energy harvester.

GAFFORELLI, GIACOMO;CORIGLIANO, ALBERTO;
2013-01-01

Abstract

Piezoelectric MicroElectroMechanical systems (MEMS) energy harvesting is an attractive technology for harvesting small magnitudes of energy from ambient vibrations. Increasing the operating frequency bandwidth of such devices is one of the major issues for real world applications. A MEMS-scale doubly clamped nonlinear beam resonator is designed and developed to demonstrate very wide bandwidth and high power density. In this paper a first complete theoretical discussion of nonlinear resonating piezoelectric energy harvesting is provided. The sectional behaviour of the beam is studied through the Classical Lamination Theory (CLT) specifically modified to introduce the piezoelectric coupling and nonlinear Green-Lagrange strain tensor. A lumped parameters model is built through Rayleigh-Ritz Method and the resulting nonlinear coupled equations are solved in the frequency domain through the Harmonic Balance Method (HBM). Finally, the influence of external load resistance on the dynamic behaviour is studied. The theoretical model shows that the power generation of nonlinear resonant harvesters is spread out on a wider bandwidth but it is theoretically bounded by the mechanical damping of the dynamic system as for linear resonating harvesters.
2013
PowerMEMS 2013
MEMS; microsystem; piezo-electric materials; energy harvesting
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/763063
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