Experiment Investigation of Bistable Vibration Energy Harvesting with Random Wave Environment
Abstract
:1. Introduction
2. Materials
2.1. Bistable Vibration Harvesting System on the Random Wave
2.2. Bistable Vibration Characteristics
2.3. Prediction of Periodic Signals Subject to Stochastic Resonance
3. Results
3.1. Vibration by Random Signal
3.2. Vibration by Period Signal
3.3. Vibration by Random and Period Signal
4. Discussion
4.1. Amplification Effect by Stochastic Resonance
4.2. Efficiency Evaluation of Vibration Power Generation
4.3. Effect of Amplitude of Periodic Excitation Signal
4.4. Applicable Conditions for Vibration Power Generation
5. Conclusions
- The stochastic resonance phenomenon by the bistable oscillation model in the random wave environment can be reproduced in the laboratory, and theoretical analysis shows that the vibration system has bistable vibration characteristics in the wide range of displacement. In addition, by using Kramer rate, the prediction equation of the excitation frequency of the proposed bistable vibration model is obtained.
- Using the experimental apparatus developed in this experiment, we can confirm the stochastic resonance which changes the response from mass stability to bistable vibration, the amplification effect was evaluated quantitatively by the measurement results. As a result of the actual measurement, the frequency range in which the probability resonance is most likely to be generated is 0.4 Hz to 0.5 Hz, and this measurement result coincides with the theoretical prediction value of 0.42 Hz in this research.
- We have developed a bistable vibratory power generation system using piezoelectric elements, a case in which stochastic resonance does not occur; average electric workability was measured by vibration generated, and the measurement results confirmed the effectiveness of the stochastic resonance.
- Our practical application of a vibratory power generation system to a random wave environment using bistable vibration model was performed; the study on bistable vibration model of an inverted cantilever beam with a mass block at its tip, providing design coverage for detailed configuration parameters, the basic technology which is useful for the research and development of the vibration power generation system for future renewable energy development was prepared.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Wu, Q.; Zhang, H.; Lian, J.; Zhao, W.; Zhou, S.; Zhao, X. Experiment Investigation of Bistable Vibration Energy Harvesting with Random Wave Environment. Appl. Sci. 2021, 11, 3868. https://doi.org/10.3390/app11093868
Wu Q, Zhang H, Lian J, Zhao W, Zhou S, Zhao X. Experiment Investigation of Bistable Vibration Energy Harvesting with Random Wave Environment. Applied Sciences. 2021; 11(9):3868. https://doi.org/10.3390/app11093868
Chicago/Turabian StyleWu, Qiong, Hairui Zhang, Jie Lian, Wei Zhao, Shijie Zhou, and Xilu Zhao. 2021. "Experiment Investigation of Bistable Vibration Energy Harvesting with Random Wave Environment" Applied Sciences 11, no. 9: 3868. https://doi.org/10.3390/app11093868
APA StyleWu, Q., Zhang, H., Lian, J., Zhao, W., Zhou, S., & Zhao, X. (2021). Experiment Investigation of Bistable Vibration Energy Harvesting with Random Wave Environment. Applied Sciences, 11(9), 3868. https://doi.org/10.3390/app11093868