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An orientation-adaptive electromagnetic energy harvester scavenging for wind-induced vibration

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  • Li, Jianwei
  • Wang, Guotai
  • Yang, Panpan
  • Wen, Yongshuang
  • Zhang, Leian
  • Song, Rujun
  • Hou, Chengwei

Abstract

Wind energy is widely distributed, pollution-free and sustainable. Harvesting wind-induced vibration energy is a promising way to build self-powered systems. However, most of the current wind-induced vibration energy harvesters are unidirectional directional and insensitive to the frequently changing in wind direction. To overcome the difficulty, this work proposes an orientation-adaptive electromagnetic energy harvester (EMEH). By introducing a rotatable bluff body, the EMEH could be self-regulated to cater for the wind flow direction. Experimental results showed that the output power of the proposed EMEH could be enhanced greatly with the increase of rotatory inertia of the rotating bluff body. And, when the stiffness of the elastic beam is high, the output performance of the EMEH can be guaranteed by increasing the rotatory inertia of the rotatable bluff body. The output power of the optimized rotating bluff body and the elastic beam is 0.498 mW and 0.673 mW at wind speeds of 5.22 m/s and 8.0 m/s, respectively.

Suggested Citation

  • Li, Jianwei & Wang, Guotai & Yang, Panpan & Wen, Yongshuang & Zhang, Leian & Song, Rujun & Hou, Chengwei, 2024. "An orientation-adaptive electromagnetic energy harvester scavenging for wind-induced vibration," Energy, Elsevier, vol. 286(C).
  • Handle: RePEc:eee:energy:v:286:y:2024:i:c:s0360544223029729
    DOI: 10.1016/j.energy.2023.129578
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    References listed on IDEAS

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    Cited by:

    1. Xu, Yifei & Xian, Tongrui & Chen, Chen & Wang, Guosen & Wang, Mengdi & Shi, Weijie, 2024. "Mathematical modeling and parameter optimization of a stacked piezoelectric energy harvester based on water pressure pulsation," Energy, Elsevier, vol. 292(C).
    2. Wang, Guotai & Song, Rujun & Luo, Lianjian & Yu, Pengbo & Yang, Xiaohui & Zhang, Leian, 2024. "Multi-piezoelectric energy harvesters array based on wind-induced vibration: Design, simulation, and experimental evaluation," Energy, Elsevier, vol. 300(C).

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