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A Wearable Electromagnetic Energy Harvester for Ultra-Low Frequency Vibrations with Enhanced Power Output

  • Longwei Duan
  • , Yuyang Zhang
  • , Feng Cao
  • , Changzhen Jia
  • , Yunjia Li
  • , Kai Tao
  • Northwestern Polytechnical University Xian
  • School of Electrical Engineering

Research output: Contribution to journalConference articlepeer-review

Abstract

In response to the technical bottleneck of low energy output in electromagnetic energy harvesters under low-frequency excitation, this study proposes an electromagnetic vibration energy harvester (VEH) based on a helical gear clutch transmission system. By integrating three key modules - linear-to-rotational conversion, claw clutch, and energy storage/release - this system efficiently converts low-frequency excitations in the range of 0.18-5 Hz into 50 Hz high-frequency unidirectional rotational motion, achieving nearly 270-fold mechanical frequency-upgrading. Experimental results show that the device can maintain a continuous output for up to 30 seconds in an open-circuit state. Under load, the maximum rotational speed reaches 800 rpm, with the single-layer and double-layer generator modules achieving peak powers of 1.3 W and 2.6 W, respectively, and an average power of 140 mW. The compact structural design supports wearable integration, providing an innovative solution for human kinetic energy harvesting and self-powered he Internet of Things (IoT) nodes.

Original languageEnglish
Pages (from-to)2306-2310
Number of pages5
JournalYouth Academic Annual Conference of Chinese Association of Automation, YAC
Issue number2025
DOIs
StatePublished - 2025
Event40th Youth Academic Annual Conference of Chinese Association of Automation, YAC 2025 - Zhengzhou, China
Duration: 17 May 202519 May 2025

Keywords

  • energy harvesting
  • mechanical frequency-upgrading
  • unidirectional rotation
  • watt-level power

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