Design, modeling and experiments of broadband tristable galloping piezoelectric energy harvester

被引:0
作者
Junlei Wang
Linfeng Geng
Shengxi Zhou
Zhien Zhang
Zhihui Lai
Daniil Yurchenko
机构
[1] Ministry of Education,Engineering Research Center of Energy Saving Technology and Equipment of Thermal Energy System
[2] Northwestern Polytechnical University,School of Aeronautics
[3] The Ohio State University,William G. Lowrie Department of Chemical and Biomolecular Engineering
[4] Shenzhen University,Guangdong Provincial Key Laboratory of Micro/Nano Optomechatronics Engineering, College of Mechatronics and Control Engineering
[5] Heriot-Watt University,Institute of Mechanical, Process & Energy Engineering
来源
Acta Mechanica Sinica | 2020年 / 36卷
关键词
Energy harvesting; Galloping; Tristable; Flow induced vibrations;
D O I
暂无
中图分类号
学科分类号
摘要
Galloping based piezoelectric energy harvester is a kind of micro-environmental energy harvesting device based on flow-induced vibrations. A novel tristable galloping-based piezoelectric energy harvester is constructed by introducing a nonlinear magnetic force on the traditional galloping-based piezoelectric energy harvester. Based on Euler–Bernoulli beam theory and Kirchhoff’s law, the corresponding aero-electromechanical model is proposed and validated by a series of wind tunnel experiments. The parametric study is performed to analyse the response of the tristable galloping-based piezoelectric energy harvester. Numerical results show that comparing with the galloping-based piezoelectric energy harvester, the mechanism of the tristable galloping-based piezoelectric energy harvester is more complex. With the increase of a wind speed, the vibration of the bluff body passes through three branches: intra-well oscillations, chaotic oscillations, and inter-well oscillations. The threshold wind speed of the presented harvester for efficiently harvesting energy is 1.0 m/s, which is decreased by 33% compared with the galloping-based piezoelectric energy harvester. The maximum output power of the presented harvester is 0.73 mW at 7.0 m/s wind speed, which is increased by 35.3%. Compared with the traditional galloping-based piezoelectric energy harvester, the presented tristable galloping-based piezoelectric energy harvester has a better energy harvesting performance from flow-induced vibrations.
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页码:592 / 605
页数:13
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