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Enhanced electrical performance of spring-supported magneto piezoelectric harvester to achieve 60 Hz under AC magnetic field

Author

Listed:
  • Wang, Quan
  • Kim, Kyung-Bum
  • Woo, Sang Bum
  • Ko, Sung Min
  • Song, Yooseob
  • Sung, Tae Hyun

Abstract

Magneto piezoelectric harvesters (MPHs) operating under an AC magnetic field have attracted much attention due to their vital importance in portable industrial applications. Here, we present the first report of a spring-supported magneto piezoelectric harvester (SMPH) operating under an AC magnetic field to generate enhanced electric performance. As the length of the spring supporting the MPH becomes longer, the elasticity coefficient (N/mm) becomes lower and the resonance frequency decreases. In order to implement SMPH at a resonance frequency of 60 Hz, a spring with spring constant of 24.52 N/mm is used to support the MPH and produce maximum output power. To increase the output power of the SMPH, a magnetic tip was used to scavenge the AC magnetic field. The electrical performance of the SMPH with the magnetic tip mass showed an output voltage of 12.5 Vmax, output current of 654 μAmax, and output power of 5.56 mWmax at a load resistance of 30 kΩ and AC magnetic field of 80 μT. The SMPH exhibits an advantage over the conventional rigidly supported MPH with regards to output power. The demonstrated device is capable of meeting the requirements of charging and operating a wireless temperature sensor system, and thus it is most suitable for use in actual industrial sites where such magnetic fields exist.

Suggested Citation

  • Wang, Quan & Kim, Kyung-Bum & Woo, Sang Bum & Ko, Sung Min & Song, Yooseob & Sung, Tae Hyun, 2022. "Enhanced electrical performance of spring-supported magneto piezoelectric harvester to achieve 60 Hz under AC magnetic field," Energy, Elsevier, vol. 238(PB).
  • Handle: RePEc:eee:energy:v:238:y:2022:i:pb:s0360544221019411
    DOI: 10.1016/j.energy.2021.121693
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    References listed on IDEAS

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    1. Maharjan, Pukar & Salauddin, Md & Cho, Hyunok & Park, Jae Yeong, 2018. "An indoor power line based magnetic field energy harvester for self-powered wireless sensors in smart home applications," Applied Energy, Elsevier, vol. 232(C), pages 398-408.
    2. Zahid Kausar, A.S.M. & Reza, Ahmed Wasif & Saleh, Mashad Uddin & Ramiah, Harikrishnan, 2014. "Energizing wireless sensor networks by energy harvesting systems: Scopes, challenges and approaches," Renewable and Sustainable Energy Reviews, Elsevier, vol. 38(C), pages 973-989.
    3. Yongke Yan & Jie E. Zhou & Deepam Maurya & Yu U. Wang & Shashank Priya, 2016. "Giant piezoelectric voltage coefficient in grain-oriented modified PbTiO3 material," Nature Communications, Nature, vol. 7(1), pages 1-10, December.
    4. Zhang, Yulong & Wang, Tianyang & Luo, Anxin & Hu, Yushen & Li, Xinxin & Wang, Fei, 2018. "Micro electrostatic energy harvester with both broad bandwidth and high normalized power density," Applied Energy, Elsevier, vol. 212(C), pages 362-371.
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