A review on micro wind energy harvesters based wind induced vibration

被引:0
|
作者
Zhao X. [1 ,2 ]
Wang J. [3 ]
Cai J. [1 ,2 ]
机构
[1] Jiangsu Engineering Research Center on Meteorological Energy Using and Control, School of Information and Control, Nanjing University of Information Science & Technology, Nanjing
[2] Jiangsu Collaborative Innovation Center on Atmospheric Environment and Equipment Technology, Nanjing University of Information Science & Technology, Nanjing
[3] School of Chemical Engineering and Energy, Zhengzhou University, Zhengzhou
来源
| 1600年 / Chinese Vibration Engineering Society卷 / 36期
关键词
Energy harvesting; Wind energy; Wind induced vibration;
D O I
10.13465/j.cnki.jvs.2017.16.017
中图分类号
学科分类号
摘要
In the field of environmental energy harvesting, it has become a hot topic on the micro wind energy harvester based on wind induced vibration. The present situation and development trends about the wind harvesters were reviewed in this paper. Two processes of energy conversion, wind flow to vibration and vibration to electricity, were discussed. The fundamental theory and typical structures of the micro wind energy harvester were mainly analyzed based on vortex-induced-vibration, flutter, galloping and resonant cavity. It is found that the piezoelectric effect is the main mode for electromechanical conversion, and the flutter and galloping are the main trend for wind-induced vibration. © 2017, Editorial Office of Journal of Vibration and Shock. All right reserved.
引用
收藏
页码:106 / 112
页数:6
相关论文
共 46 条
  • [1] Zhou G., Huang L., Li W., Et al., Harvesting ambient environmental energy for wireless sensor networks: a survey, Journal of Sensors, 2, pp. 1-20, (2014)
  • [2] Tang L., Zhao L., Yang Y., Et al., Equivalent circuit representation and analysis of galloping-based wind energy harvesting, Mechatronics IEEE/ASME Transactions on, 20, 2, pp. 834-844, (2015)
  • [3] Goushcha O., Akaydin H.D., Elvin N., Et al., Energy harvesting prospects in turbulent boundary layers by using piezoelectric transduction, Journal of Fluids and Structures, 54, pp. 823-847, (2015)
  • [4] Holmes A.S., Hong G., Pullen K.R., Axial-flux permanent magnet machines for micropower generation, Journal of Microelectromechanical Systems, 14, 1, pp. 54-62, (2005)
  • [5] Gao X., Shih W.H., Shih W.Y., Flow energy harvesting using piezoelectric cantilevers with cylindrical extension, Industrial Electronics IEEE Transactions on, 60, 3, pp. 1116-1118, (2013)
  • [6] Bryant M., Wolff E., Garcia E., Aeroelastic flutter energy harvester design: the sensitivity of the driving instability to system parameters, Smart Materials & Structures, 20, 12, pp. 125017-125028, (2011)
  • [7] Zhao X., Wen Z., Design of a miniaturized wind energy harvester based on a fluttering flexible beam, Journal of Chongqing University, 36, 8, pp. 145-150, (2013)
  • [8] Priya S., Inman D.J., Energy Harvesting Technologies, (2008)
  • [9] Ding Z., Chen R., Zhang P., Et al., Design and optimization of spherical magnet array structure of energy harvesting system, Journal of Vibration and Shock, 35, 2, pp. 212-217, (2016)
  • [10] Yang Y., Wang Z., Hybrid energy cells for simultaneously harvesting multi-types of energies, Nano Energy, 14, pp. 245-256, (2015)