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Journal ArticleDOI

Modeling and Analysis of Piezoelectric Energy Harvesting Beams Using the Dynamic Stiffness and Analytical Modal Analysis Methods

Philip Bonello, +1 more
- 01 Feb 2011 - 
- Vol. 133, Iss: 1, pp 011009
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TLDR
In this paper, the Euler-Bernoulli model with piezoelectric coupling is used and the external electrical load is represented by generic linear impedance, and the effect of the impedance and quantifies the tuning range of the resonance frequencies under variable impedance.
Abstract
The modeling and analysis of base-excited piezoelectric energy harvesting beams have attracted many researchers with the aim of predicting the electrical output for a given base motion input. Despite this, it is only recently that an accurate model based on the analytical modal analysis method (AMAM) has been developed. Moreover, single-degree-of-freedom models are still being used despite the proven potential for significant error. One major disadvantage of the AMAM is that it is restricted to simple cantilevered uniform-section beams. This paper presents two alternative modeling techniques for energy harvesting beams and uses these techniques in a theoretical study of a bimorph. One of the methods is a novel application of the dynamic stiffness method (DSM) to the modeling of energy harvesting beams. This method is based on the exact solution of the wave equation and so obviates the need for modal transformation. The dynamic stiffness matrix of a uniform-section beam could be used in the modeling of beams with arbitrary boundary conditions or assemblies of beams of different cross sections. The other method is a much-needed reformulation of the AMAM that condenses the analysis to encompass all previously analyzed systems. The Euler-Bernoulli model with piezoelectric coupling is used and the external electrical load is represented by generic linear impedance. Simulations verify that, with a sufficient number of modes included, the AMAM result converges to the DSM result. A theoretical study of a bimorph investigates the effect of the impedance and quantifies the tuning range of the resonance frequencies under variable impedance. The neutralizing effect of a tuned harvester on the vibration at its base is investigated using the DSM. The findings suggest the potential of the novel concept of a variable capacitance adaptive vibration neutralizer that doubles as an adaptive energy harvester. The application of the DSM to more complex systems is illustrated. For the case studied, a significant increase in the power generated was achieved for a given working frequency through the application of a tip rotational restraint, the use of segmented electrodes, and a resized tip mass.

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Citations
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Journal ArticleDOI

Analysis of bimorph piezoelectric beam energy harvesters using Timoshenko and Euler-Bernoulli beam theory

TL;DR: In this article, a spectral finite element method for bimorph piezoelectric beam energy harvesters is developed based on the Timoshenko beam theory and the Euler-Bernoulli beam theory.
Journal ArticleDOI

Broadband and tunable PZT energy harvesting utilizing local nonlinearity and tip mass effects

TL;DR: In this paper, a broadband piezoelectric energy harvester with an applied restoring force is studied, where the restoring force was modeled as a spring in the boundary conditions of the system, and the system was composed of a clamped-free beam with a tip mass supported by a spring at the free end.
Journal ArticleDOI

Analytical modeling and experimental verification of vibration-based piezoelectric bimorph beam with a tip-mass for power harvesting

TL;DR: In this paper, an analytical model of the dynamic behavior of an electromechanical piezoelectric bimorph cantilever harvester connected with an AC-DC circuit based on the Euler-Bernoulli beam theory and Hamiltonian theorem is presented.
Journal ArticleDOI

A novel design of a map-tuning piezoelectric vibration energy harvester

TL;DR: In this paper, a self-tuning bimorph PZT beam for maximum vibration energy harvesting is introduced, where a movable intermediate rigid support is attached to the beam and by adjusting the support?s position according to the sensed ambient frequency, the beam?s resonance frequency will coincide with the ambient frequency such that the harvested vibration energy is maximized.
Journal ArticleDOI

Dynamics of symmetric and asymmetric potential well-based piezoelectric harvesters: A comprehensive review:

TL;DR: This article provides a sequential, comprehensive, and informative survey of potential well based models and studies related to piezoelectric harvesters (PEH).
References
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TL;DR: In this article, the exact analytical solution of a cantilevered piezoelectric energy harvester with Euler-Bernoulli beam assumptions is presented, and the resulting expressions for the coupled mechanical response and the electrical outputs are then reduced for the particular case of harmonic behavior in time and closed-form exact expressions are obtained.
Journal ArticleDOI

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TL;DR: In this article, a model of the PZT power harvesting device was developed to simplify the design procedure necessary for determining the appropriate size and vibration levels necessary for sufficient energy to be produced and supplied to the electronic devices.
Journal ArticleDOI

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