A low-frequency unidirectional-strain-mode bistable piezoelectric vibration energy harvester via prestressing curved vibrators

IF 8.9 1区 工程技术 Q1 ENGINEERING, MECHANICAL Mechanical Systems and Signal Processing Pub Date : 2025-04-12 DOI:10.1016/j.ymssp.2025.112692
Chenyang He , Shijie Lin , Mingxuan Liu , Li Zhang , Junwu Kan , Fanxu Meng , Zhonghua Zhang
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Abstract

Vibration energy harvesting using piezoelectric transduction becomes increasingly popular as a promising alternative to electrochemical batteries for powering low-power wireless and portable electronic devices. A low-frequency unidirectional-strain-mode bistable piezoelectric vibration energy harvester (USB-PVEH) is proposed to offer a viable solution to the possible damage caused by the bidirectional deformation of piezoelectric plates in this paper. The salient characteristics of the USB-PVEH were that bistable vibration energy harvesting was implemented via the unidirectional-strain piezoelectric vibrators which were constructed by prepressuring two initially-curved piezoelectric plates. Also, the deformation of pre-bent piezoelectric vibrators subjected to the unidirectional compressive strain wasn’t directly induced by the external vibration source but triggered indirectly by the elastic beam. To prove the structural feasibility and ascertain the influence of adjustable magnet installation parameters on the energy harvester, the theoretical investigation, simulation, fabrication and experimental testing were conducted. The results showed that the potential well structure in nonlinear magnetic force can be altered by adjusting installation parameters such as the horizontal distance, vertical distance and installation angle of the adjustable magnet, thereby modifying the dynamic performance of the energy harvester. Additionally, the USB-PVEH exhibited an optimal parameter combination (d = 14 mm, h = 6 mm, α = 67.5°), where the natural frequency was 16 Hz and the effective bandwidth was 19.6 Hz. Furthermore, the maximum output power of the USB-PVEH could reach 5.27 mW at 16 Hz with the optimal load resistance of 70 kΩ. Consequently, it is expected that the USB-PVEH can provide reference for the structural design of PVEH in high-amplitude environments.
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通过预应力曲线振动器实现低频单向应变模式双稳态压电振动能量收集器
使用压电转导的振动能量收集作为电化学电池的一种有前途的替代方案,为低功耗无线和便携式电子设备供电,越来越受欢迎。本文提出了一种低频单向应变型双稳态压电振动能量采集器(USB-PVEH),为解决压电片双向变形可能造成的损伤提供了可行的解决方案。USB-PVEH的显著特点是通过对两片初始弯曲的压电片施加压力而形成的单向应变压电振子实现双稳态振动能量收集。在单向压缩应变作用下,预弯曲压电振子的变形不是由外部振动源直接引起的,而是由弹性梁间接触发的。为了证明结构的可行性,确定可调磁体安装参数对能量采集器的影响,进行了理论研究、仿真、制造和实验测试。结果表明,通过调整可调磁体的水平距离、垂直距离和安装角度等安装参数,可以改变非线性磁力作用下的势阱结构,从而改变能量采集器的动态性能。此外,USB-PVEH表现出最佳的参数组合(d = 14 mm, h = 6 mm, α = 67.5°),其中固有频率为16 Hz,有效带宽为19.6 Hz。此外,USB-PVEH在16 Hz时的最大输出功率可达5.27 mW,最佳负载电阻为70 kΩ。因此,期望USB-PVEH可以为高振幅环境下PVEH的结构设计提供参考。
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来源期刊
Mechanical Systems and Signal Processing
Mechanical Systems and Signal Processing 工程技术-工程:机械
CiteScore
14.80
自引率
13.10%
发文量
1183
审稿时长
5.4 months
期刊介绍: Journal Name: Mechanical Systems and Signal Processing (MSSP) Interdisciplinary Focus: Mechanical, Aerospace, and Civil Engineering Purpose:Reporting scientific advancements of the highest quality Arising from new techniques in sensing, instrumentation, signal processing, modelling, and control of dynamic systems
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