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Clearance-type nonlinear energy sinks for enhancing performance in electroacoustic wave energy harvesting
by
Leamy, Michael J.
, Darabi, Amir
in
Amplitudes
/ Automotive Engineering
/ Bifurcations
/ Classical Mechanics
/ Clearances
/ Closed form solutions
/ Control
/ Degrees of freedom
/ Dynamical Systems
/ Electroacoustic waves
/ Energy
/ Energy harvesting
/ Engineering
/ Exact solutions
/ Harvesters
/ Impact analysis
/ Impact resistance
/ Mathematical analysis
/ Mathematical models
/ Mechanical Engineering
/ Nonlinearity
/ Original Paper
/ Performance enhancement
/ Poincare maps
/ Qualitative analysis
/ Stiffness
/ Vibration
/ Wave power
2017
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Clearance-type nonlinear energy sinks for enhancing performance in electroacoustic wave energy harvesting
by
Leamy, Michael J.
, Darabi, Amir
in
Amplitudes
/ Automotive Engineering
/ Bifurcations
/ Classical Mechanics
/ Clearances
/ Closed form solutions
/ Control
/ Degrees of freedom
/ Dynamical Systems
/ Electroacoustic waves
/ Energy
/ Energy harvesting
/ Engineering
/ Exact solutions
/ Harvesters
/ Impact analysis
/ Impact resistance
/ Mathematical analysis
/ Mathematical models
/ Mechanical Engineering
/ Nonlinearity
/ Original Paper
/ Performance enhancement
/ Poincare maps
/ Qualitative analysis
/ Stiffness
/ Vibration
/ Wave power
2017
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Do you wish to request the book?
Clearance-type nonlinear energy sinks for enhancing performance in electroacoustic wave energy harvesting
by
Leamy, Michael J.
, Darabi, Amir
in
Amplitudes
/ Automotive Engineering
/ Bifurcations
/ Classical Mechanics
/ Clearances
/ Closed form solutions
/ Control
/ Degrees of freedom
/ Dynamical Systems
/ Electroacoustic waves
/ Energy
/ Energy harvesting
/ Engineering
/ Exact solutions
/ Harvesters
/ Impact analysis
/ Impact resistance
/ Mathematical analysis
/ Mathematical models
/ Mechanical Engineering
/ Nonlinearity
/ Original Paper
/ Performance enhancement
/ Poincare maps
/ Qualitative analysis
/ Stiffness
/ Vibration
/ Wave power
2017
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Clearance-type nonlinear energy sinks for enhancing performance in electroacoustic wave energy harvesting
Journal Article
Clearance-type nonlinear energy sinks for enhancing performance in electroacoustic wave energy harvesting
2017
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Overview
This paper explores a clearance-type nonlinear energy sink (NES) for increasing electrical energy harvested from non-stationary mechanical waves, such as those encountered during impact and intermittent events. The key idea is to trap energy in the NES such that it can be harvested over a time period longer than that afforded by the passing disturbance itself. Analytical, computational, and experimental techniques are employed to optimize the energy sink, explore qualitative behavior (to include bifurcations), and verify enhanced performance. Unlike traditionally studied single-DOF NESs, both subdomains of the NES (i.e., on either side of the clearance) contain displaceable degrees of freedom, increasing the complexity of the analytical solution approach. However, closed-form solutions are found which quantify the relationship between the impact amplitude and the energy produced, parameterized by system properties such as the harvester effective resistance, the clearance gap, and the domain mass and stiffness. Bifurcation diagrams and trends therein provide insight into the number and state of impact events at the NES as excitation amplitude increases. Moreover, a closed-form Poincaré map is derived which maps one NES impact location to the next, greatly simplifying the analysis while providing an important tool for follow-on bifurcation studies. Finally, a series of representative experiments are carried out to realize the benefits of using clearance-type nonlinearities to trap wave energy and increase the net harvested energy.
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