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Parametric study of a novel vibro-impact energy harvesting system with dielectric elastomer

Author

Listed:
  • Yurchenko, D.
  • Lai, Z.H.
  • Thomson, G.
  • Val, D.V.
  • Bobryk, R.V.

Abstract

A vibro-impacting mechanical system with two dielectric elastomeric membranes for harvesting energy from ambient vibrations is proposed. The purpose of the paper is to study the system performance under different angles of its inclination with respect to a horizontal position in the effort to determine the best layout of the system. The dimensional, electrical and dynamic parameters of the dielectric elastomeric membrane are analysed and then used to numerically estimate the output voltage of the proposed system. The electrical properties of the dielectric elastomer membrane are validated experimentally, and the dynamic behaviors of the system are fully studied under different initial conditions. The system output performances under harmonic excitation are further discussed. The approach and an application example for the design of the proposed device subjected to a certain vibrational environment is presented.

Suggested Citation

  • Yurchenko, D. & Lai, Z.H. & Thomson, G. & Val, D.V. & Bobryk, R.V., 2017. "Parametric study of a novel vibro-impact energy harvesting system with dielectric elastomer," Applied Energy, Elsevier, vol. 208(C), pages 456-470.
  • Handle: RePEc:eee:appene:v:208:y:2017:i:c:p:456-470
    DOI: 10.1016/j.apenergy.2017.10.006
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    References listed on IDEAS

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    1. Wu, Shuai & Luk, P.C.K. & Li, Chunfang & Zhao, Xiangyu & Jiao, Zongxia & Shang, Yaoxing, 2017. "An electromagnetic wearable 3-DoF resonance human body motion energy harvester using ferrofluid as a lubricant," Applied Energy, Elsevier, vol. 197(C), pages 364-374.
    2. Chiba, S. & Waki, M. & Wada, T. & Hirakawa, Y. & Masuda, K. & Ikoma, T., 2013. "Consistent ocean wave energy harvesting using electroactive polymer (dielectric elastomer) artificial muscle generators," Applied Energy, Elsevier, vol. 104(C), pages 497-502.
    3. Jung, Inki & Shin, Youn-Hwan & Kim, Sangtae & Choi, Ji-young & Kang, Chong-Yun, 2017. "Flexible piezoelectric polymer-based energy harvesting system for roadway applications," Applied Energy, Elsevier, vol. 197(C), pages 222-229.
    4. Zhou, Shengxi & Cao, Junyi & Inman, Daniel J. & Lin, Jing & Liu, Shengsheng & Wang, Zezhou, 2014. "Broadband tristable energy harvester: Modeling and experiment verification," Applied Energy, Elsevier, vol. 133(C), pages 33-39.
    5. 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.
    6. Orrego, Santiago & Shoele, Kourosh & Ruas, Andre & Doran, Kyle & Caggiano, Brett & Mittal, Rajat & Kang, Sung Hoon, 2017. "Harvesting ambient wind energy with an inverted piezoelectric flag," Applied Energy, Elsevier, vol. 194(C), pages 212-222.
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