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High power density energy harvester with non-uniform cantilever structure due to high average strain distribution

Author

Listed:
  • Hu, Yili
  • Yi, Zhiran
  • Dong, Xiaoxue
  • Mou, Fangxiao
  • Tian, Yingwei
  • Yang, Qinghai
  • Yang, Bin
  • Liu, Jingquan

Abstract

A piezoelectric energy harvester with a non-uniform cantilever structure is presented for high-performance energy harvester. The optimal layout length of the piezoelectric layer, the effect of the key design parameters on this optimal length and its underlying mechanism have been systematically investigated by the theoretical prediction, the finite element analysis and the experimental verification. As a result, the optimal PZT layout length for the maximum power is approximately 1/5 total length of the cantilever with a large proof mass, which results from the large average strain distribution in the functional layer. The width of cantilever, the thickness of PZT layer and the modulus of substrate have an apparent effect on the optimal PZT layout length, whilst the thickness of proof mass, the total length of cantilever and the applied acceleration indicate a minimal effect. Based on this optimization strategy, a non-uniform cantilever piezoelectric harvester with the optimal piezoelectric layer length performs high power density (30 mW/cm3) and good stability (3.3 million cycles) at the low resonant frequency of 46 Hz. This significant improvement bears great guiding significance on the design and practical application of such strain-induced cantilever energy harvesters.

Suggested Citation

  • Hu, Yili & Yi, Zhiran & Dong, Xiaoxue & Mou, Fangxiao & Tian, Yingwei & Yang, Qinghai & Yang, Bin & Liu, Jingquan, 2019. "High power density energy harvester with non-uniform cantilever structure due to high average strain distribution," Energy, Elsevier, vol. 169(C), pages 294-304.
  • Handle: RePEc:eee:energy:v:169:y:2019:i:c:p:294-304
    DOI: 10.1016/j.energy.2018.11.085
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    References listed on IDEAS

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    1. Jasim, Abbas & Yesner, Greg & Wang, Hao & Safari, Ahmad & Maher, Ali & Basily, B., 2018. "Laboratory testing and numerical simulation of piezoelectric energy harvester for roadway applications," Applied Energy, Elsevier, vol. 224(C), pages 438-447.
    2. Ma, Tao & Yang, Hongxing & Guo, Xiaodong & Lou, Chengzhi & Shen, Zhicheng & Chen, Jian & Du, Jiyun, 2018. "Development of inline hydroelectric generation system from municipal water pipelines," Energy, Elsevier, vol. 144(C), pages 535-548.
    3. Shaikh, Faisal Karim & Zeadally, Sherali, 2016. "Energy harvesting in wireless sensor networks: A comprehensive review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 55(C), pages 1041-1054.
    4. Sangtae Kim & Soon Ju Choi & Kejie Zhao & Hui Yang & Giorgia Gobbi & Sulin Zhang & Ju Li, 2016. "Electrochemically driven mechanical energy harvesting," Nature Communications, Nature, vol. 7(1), pages 1-7, April.
    5. Selvan, Krishna Veni & Mohamed Ali, Mohamed Sultan, 2016. "Micro-scale energy harvesting devices: Review of methodological performances in the last decade," Renewable and Sustainable Energy Reviews, Elsevier, vol. 54(C), pages 1035-1047.
    6. Wang, Xiang & Chen, Changsong & Wang, Na & San, Haisheng & Yu, Yuxi & Halvorsen, Einar & Chen, Xuyuan, 2017. "A frequency and bandwidth tunable piezoelectric vibration energy harvester using multiple nonlinear techniques," Applied Energy, Elsevier, vol. 190(C), pages 368-375.
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    2. Lu Wang & Zutang Wu & Shuai Liu & Qian Wang & Junjie Sun & Yun Zhang & Guangzhao Qin & Dejiang Lu & Ping Yang & Libo Zhao & Zhuangde Jiang & Ryutaro Maeda, 2022. "Uniform Stress Distribution of Bimorph by Arc Mechanical Stopper for Maximum Piezoelectric Vibration Energy Harvesting," Energies, MDPI, vol. 15(9), pages 1-10, April.
    3. Jeong, Se Yeong & Hwang, Won Seop & Cho, Jae Yong & Jeong, Jae Chul & Ahn, Jung Hwan & Kim, Kyung Bum & Hong, Seong Do & Song, Gyeong Ju & Jeon, Deok Hwan & Sung, Tae Hyun, 2019. "Piezoelectric device operating as sensor and harvester to drive switching circuit in LED shoes," Energy, Elsevier, vol. 177(C), pages 87-93.
    4. Ghodsi, Mojtaba & Ziaiefar, Hamidreza & Mohammadzaheri, Morteza & Al-Yahmedi, Amur, 2019. "Modeling and characterization of permendur cantilever beam for energy harvesting," Energy, Elsevier, vol. 176(C), pages 561-569.

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