Vibration Characteristics and Experimental Research of an Improved Bistable Piezoelectric Energy Harvester
Abstract
:Featured Application
Abstract
1. Introduction
2. Structure and Mathematic Model
2.1. Structure of the BPEH and IBPEH
2.2. Modeling of Restoring Force
2.3. Modeling of the Nonlinear Magnetic Model
2.4. Dynamic Model of IBPEH
3. Numerical Simulations
3.1. Potential Energy Analysis of the System
3.2. Influence of Excitation Frequency on Vibration Characteristics
3.3. Influence of Excitation Amplitude on Vibration Characteristics
4. Experimental Validation and Discussion
4.1. Experimental Prototype and Experimental Platform
4.2. Discussion of Excitation Frequency on Vibration Characteristics
4.3. Discussion of Excitation Amplitude on Vibration Characteristics
5. Conclusions
- (1)
- IBPEH has a wider operating frequency bandwidth. In particular, when the excitation amplitude is 14 m/s2, the operating frequency bandwidth of BPEH is only 3.2 Hz, while that of IBPEH is 6.1 Hz, which is a 93.55% improvement.
- (2)
- For BPEH, adding magnets and properly adjusting the magnet spacing can make the potential well of the system shallow, and thus optimize the potential well. Compared with BPEH, IBPEH relieves the low excitation threshold to achieve large amplitude cross-hole periodic motion and can achieve dense high-energy output at low excitation amplitude.
- (3)
- IBPEH can remove the restriction of BPEH potential well depth and improve the power output. In the whole range of excitation frequency and amplitude, the voltage generated by IBPEH is always higher than that of BPEH under the same excitation conditions. This further proves that the change in nonlinearity can affect the collection efficiency of piezoelectric energy harvesters.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Symbol | Value | Unit |
---|---|---|---|
Substrate layer | |||
Density | kg/m3 | ||
Arc-shaped radius | m | ||
Length | m | ||
Height | m | ||
Width | m | ||
PVDF | |||
Density | kg/m3 | ||
Length | m | ||
Height | m | ||
Width | m | ||
Magnet | |||
Mass | kg | ||
Length | m | ||
Height | m | ||
Width | m | ||
Magnetization strength | A/m | ||
Vacuum permeability | H/m |
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Zhang, X.; Tian, H.; Pan, J.; Chen, X.; Huang, M.; Xu, H.; Zhu, F.; Guo, Y. Vibration Characteristics and Experimental Research of an Improved Bistable Piezoelectric Energy Harvester. Appl. Sci. 2023, 13, 258. https://doi.org/10.3390/app13010258
Zhang X, Tian H, Pan J, Chen X, Huang M, Xu H, Zhu F, Guo Y. Vibration Characteristics and Experimental Research of an Improved Bistable Piezoelectric Energy Harvester. Applied Sciences. 2023; 13(1):258. https://doi.org/10.3390/app13010258
Chicago/Turabian StyleZhang, Xuhui, Hao Tian, Jianan Pan, Xiaoyu Chen, Mengyao Huang, Hengtao Xu, Fulin Zhu, and Yan Guo. 2023. "Vibration Characteristics and Experimental Research of an Improved Bistable Piezoelectric Energy Harvester" Applied Sciences 13, no. 1: 258. https://doi.org/10.3390/app13010258
APA StyleZhang, X., Tian, H., Pan, J., Chen, X., Huang, M., Xu, H., Zhu, F., & Guo, Y. (2023). Vibration Characteristics and Experimental Research of an Improved Bistable Piezoelectric Energy Harvester. Applied Sciences, 13(1), 258. https://doi.org/10.3390/app13010258