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May 6, 2026Micromachines0 citationsOpen Access

A Bimodal Approach to Broadband Vibration Energy Harvesting Using Hybrid Piezoelectric–Electromagnetic Transduction

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GJGuangye JiaQZQiang ZhouHZHuayang Zhao

Key Points

  • The research aims to improve energy harvesting efficiency of bistable vibration energy harvesters using a bimodal approach.
  • A dual-cantilever beam structure was designed with an iron-core coil and magnet.
  • A mathematical model was created for a piezoelectric–electromagnetic coupled bimodal harvester.
  • Numerical simulations and frequency sweep tests were performed to analyze performance.
  • Achieved maximum output power of 8.9 μW and 9.7 μW at the first and second resonance points, respectively.
  • Electromagnetic module reached maximum output powers of 0.39 W and 0.71 W.
  • The effective bandwidth was broadened by approximately 80%, demonstrating improved performance.

Abstract

To address the issue of traditional bistable vibration energy harvesters (BVEHs) being prone to becoming trapped in a single potential well—which results in a narrowed energy harvesting bandwidth and reduced efficiency—this paper proposes a method that utilizes the nonlinear electromagnetic force generated during the induction process to modulate the kinematic behavior of the oscillator. The characteristics and influencing factors of the nonlinear force produced during electromagnetic induction are analyzed. A dual-cantilever beam structure is designed, with an iron-core coil and a magnet placed at the respective free ends. A mathematical model of a piezoelectric–electromagnetic coupled bimodal broadband vibration energy harvester is established and numerically simulated. Furthermore, a vertical vibration experimental platform is constructed to conduct frequency sweep tests. The experimental results demonstrate that the proposed piezoelectric–electromagnetic coupled bimodal broadband vibration energy harvester effectively improves energy harvesting efficiency. Within the frequency range of 5–20 Hz, the system exhibits two vibration modes, with resonant frequencies of approximately 7.7 Hz and 15.7 Hz. For a single-layer PVDF piezoelectric film, the maximum output power at the first and second resonance points is 8.9 μW and 9.7 μW, respectively. The electromagnetic module achieves maximum output powers of 0.39 W and 0.71 W. Moreover, within the frequency ranges of 6.3–9.8 Hz and 14–17.7 Hz (a total bandwidth of 7.2 Hz), the device maintains a stable power output. The effective bandwidth is broadened by approximately 80%, demonstrating excellent broadband performance.

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Cite This Study

Jia et al. (2026) studied this question.

synapsesocial.com/papers/69faa1eb04f884e66b532996https://doi.org/10.3390/mi17050553
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