Javascript must be enabled to continue!
Hybrid-Bistable Vibration Energy Harvester With Adaptive Potential Well
View through CrossRef
Many common environmental vibration sources exhibit low and broad frequency spectra. In order to exploit such excitations, energy harvesting architectures utilizing nonlinearity, especially bistability, have been widely studied since the energetic interwell oscillations between their stable equilibria can provide enhanced power harvesting capability over a wider bandwidth compared to the linear counterpart. However, one of the limitations of these nonlinear architectures is that the interwell oscillation regime may not be activated for a low excitation level that is not strong enough to overcome the potential energy barrier, thus resulting in low amplitude intrawell response which provides poor energy harvesting performance. While the strategic integration of bistability and additional dynamic elements has shown potential to improve broadband energy harvesting performance by lowering the potential barrier, there is a clear opportunity to further improve the energy harvesting performance by extracting electrical power from the kinetic energy in the additional element that is induced when the potential barrier is lowered. To explore this opportunity and advance the state of the art, this research develops a novel hybrid bistable vibration energy harvesting system with a passive mechanism that not only adaptively lowers the potential energy barrier level to improve broadband performance but also exploits additional means to capture more usable electrical power. The proposed harvester is comprised of a cantilever beam with repulsive magnets, one attached at the free end and the other attached to a linear spring that is axially aligned with the cantilever (a spring-loaded magnet oscillator). This new approach capitalizes on the adaptive bistable potential that is passively realized by the spring-loaded magnet oscillator, which lowers the double-well potential energy barrier thereby facilitating the interwell oscillations of the cantilever across a broad range of excitation conditions, especially for low excitation amplitudes and frequencies. The interwell oscillation of the cantilever beam enhances not only the piezoelectric energy harvesting from the beam but also the electromagnetic energy harvesting from the spring-loaded magnet oscillator by inducing large amplitude vibrations of the magnet oscillator. Numerical investigations found that the proposed architecture yields significantly enhanced energy harvesting performance compared to the conventional bistable harvester with fixed magnet.
American Society of Mechanical Engineers
Title: Hybrid-Bistable Vibration Energy Harvester With Adaptive Potential Well
Description:
Many common environmental vibration sources exhibit low and broad frequency spectra.
In order to exploit such excitations, energy harvesting architectures utilizing nonlinearity, especially bistability, have been widely studied since the energetic interwell oscillations between their stable equilibria can provide enhanced power harvesting capability over a wider bandwidth compared to the linear counterpart.
However, one of the limitations of these nonlinear architectures is that the interwell oscillation regime may not be activated for a low excitation level that is not strong enough to overcome the potential energy barrier, thus resulting in low amplitude intrawell response which provides poor energy harvesting performance.
While the strategic integration of bistability and additional dynamic elements has shown potential to improve broadband energy harvesting performance by lowering the potential barrier, there is a clear opportunity to further improve the energy harvesting performance by extracting electrical power from the kinetic energy in the additional element that is induced when the potential barrier is lowered.
To explore this opportunity and advance the state of the art, this research develops a novel hybrid bistable vibration energy harvesting system with a passive mechanism that not only adaptively lowers the potential energy barrier level to improve broadband performance but also exploits additional means to capture more usable electrical power.
The proposed harvester is comprised of a cantilever beam with repulsive magnets, one attached at the free end and the other attached to a linear spring that is axially aligned with the cantilever (a spring-loaded magnet oscillator).
This new approach capitalizes on the adaptive bistable potential that is passively realized by the spring-loaded magnet oscillator, which lowers the double-well potential energy barrier thereby facilitating the interwell oscillations of the cantilever across a broad range of excitation conditions, especially for low excitation amplitudes and frequencies.
The interwell oscillation of the cantilever beam enhances not only the piezoelectric energy harvesting from the beam but also the electromagnetic energy harvesting from the spring-loaded magnet oscillator by inducing large amplitude vibrations of the magnet oscillator.
Numerical investigations found that the proposed architecture yields significantly enhanced energy harvesting performance compared to the conventional bistable harvester with fixed magnet.
Related Results
Simulation analysis of dynamic response of the energy harvester based on diamagnetic levitation
Simulation analysis of dynamic response of the energy harvester based on diamagnetic levitation
Based on diamagnetic levitation, the micro-vibration energy harvester is proposed, which has advantages such as low friction, low mechanical damping, low-frequency response and fre...
Faktor-Faktor yang Mempengaruhi Adopsi Petani Terhadap Teknologi Combine Harvester
Faktor-Faktor yang Mempengaruhi Adopsi Petani Terhadap Teknologi Combine Harvester
Abstrak.Pembangunan pertanian memiliki tugas utama yang salah satunya adalah menemukan metode atau cara bagi pertanian untuk dapat dipraktikkan secara efektif oleh petani. Pembangu...
Theoretical Study on Widening Bandwidth of Piezoelectric Vibration Energy Harvester with Nonlinear Characteristics
Theoretical Study on Widening Bandwidth of Piezoelectric Vibration Energy Harvester with Nonlinear Characteristics
In order to make a piezoelectric vibration energy harvester collect more energy on a broader frequency range, nonlinearity is introduced into the system, allowing the harvester to ...
Design and test of liquid sloshing piezoelectric energy harvester
Design and test of liquid sloshing piezoelectric energy harvester
The energy harvester based on the piezoelectric effect can convert the vibration energy in the environment into electricity to power the network nodes. In order to broaden the effe...
A Hybrid Piezoelectric and Electromagnetic Broadband Harvester with Double Cantilever Beams
A Hybrid Piezoelectric and Electromagnetic Broadband Harvester with Double Cantilever Beams
Vibration-energy harvesting is an effective strategy for replacing batteries and provides a long-term power supply to microelectronic devices. Harvesting vibration energy from huma...
Influence of diameter/aspect ratio on the output performance of wake-induced vibration piezoelectric energy harvester
Influence of diameter/aspect ratio on the output performance of wake-induced vibration piezoelectric energy harvester
To address the self-powered issue of micro-sensors, an integrated piezoelectric energy harvester was proposed, which utilized wake-induced vibration (WIV). Utilizing the wind-induc...
Blades condition monitoring using shaft torsional vibration signals
Blades condition monitoring using shaft torsional vibration signals
PurposeThe purpose of this paper is to validate mathematically the feasibility of extracting the rotating blades vibration condition from the shaft torsional vibration measurement....
A Bio-Inspired Vibration Energy Harvester for Downhole Electrical Tools
A Bio-Inspired Vibration Energy Harvester for Downhole Electrical Tools
Abstract
At present, most of the downhole electrical devices use disposable batteries or rechargeable batteries as power supplies. When the disposable batteries run ...

