Theoretical and experiment optimization research of a frequency up-converted piezoelectric energy harvester based on impact and magnetic force

Qianju Cheng, Qingmeng Wang, Zhi Liu, Zean Lv
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Abstract

Harvesting environmental vibrations to power electronic components is an essential approach for addressing the power supply challenge in MEMS. However, conventional vibration energy collection systems frequently suffer from limited frequency bandwidth and high-frequency deficiencies. This paper proposes a novel up-frequency structure for piezoelectric vibration energy harvesting (VEH) that relies on both nonlinear magnetic force and piecewise linear force. The proposed VEH's nonlinear dynamic characteristics are analyzed theoretically, and an experimental prototype machining and vibration test platform are constructed. Theoretical and experimental results are compared and analyzed by conducting basic experiments and key parameter optimization experiments. The research results demonstrate that the proposed VEH can efficiently harvest vibration energy in low-frequency and wide-band environments. Regarding the system parameters, higher vibration acceleration results in increased output voltage and wider working frequency bandwidth. Reducing the gap distance enhances piecewise linear vibration, which broadens the working frequency bandwidth. Furthermore, the proposed VEH's ability to harvest low-frequency vibrations can be enhanced by reducing the magnet distance, thereby reducing the linear resonance frequency of the system. The findings of this study offer valuable insights for advancing the engineering application of MEMS self-power supply technology.
基于冲击力和磁力的频率上变压电能量收集器的理论和实验优化研究
收集环境振动为电子元件供电是解决微机电系统供电难题的重要方法。然而,传统的振动能量收集系统往往存在频率带宽有限和高频率不足的问题。本文提出了一种新型压电振动能量收集(VEH)上频结构,它同时依赖于非线性磁力和分段线性力。本文对所提出的 VEH 的非线性动态特性进行了理论分析,并构建了实验原型加工和振动测试平台。通过进行基础实验和关键参数优化实验,对理论和实验结果进行了比较和分析。研究结果表明,所提出的 VEH 可以在低频和宽频带环境中有效地采集振动能量。在系统参数方面,振动加速度越大,输出电压越高,工作频率带宽越宽。减小间隙距离可增强片线性振动,从而拓宽工作频率带宽。此外,通过减小磁铁间距,还可以增强拟议 VEH 收集低频振动的能力,从而降低系统的线性共振频率。这项研究的结果为推动微机电系统自供电技术的工程应用提供了宝贵的见解。
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