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基于耦合共振频率调谐的宽带压电能量采集器

Broadband Piezoelectric Energy Harvester Based on Coupling Resonance Frequency Tuning.

作者信息

Hu Kun, Wang Min

机构信息

Department of Mechanics and Aerospace Engineering, Southern University of Science and Technology, Shenzhen 518055, China.

School of Microelectronics, Southern University of Science and Technology, Shenzhen 518055, China.

出版信息

Micromachines (Basel). 2022 Dec 30;14(1):105. doi: 10.3390/mi14010105.

Abstract

The bandwidth of piezoelectric energy harvesters (PEHs) can be broadened by resonance-based frequency tuning approaches, including mechanical tuning and electrical tuning. In this work, a new coupling tuning mechanism for regulating the near-open-circuit resonance frequency by changing the effective electrode coverage (EEC) is presented. A linear model of a bimorph piezoelectric cantilever with segmented electrodes is used to evaluate the power harvesting behavior near the open-circuit resonance frequency when EEC changes from 0 to 100%. According to the theoretical analysis, it is found that the variation of EEC brings about the change in coupling strength, which is positively associated with the near-open-circuit resonance frequency of PEH. Two cantilever PEHs with segmented electrodes based on PZT and PZT-PT are constructed for validation of the coupling tuning mechanism. The analytical and experimental results illustrate remarkable improvements in both bandwidth and average power through the coupling resonance frequency tuning method. In addition, adopting extraordinary piezoelectric single crystals and optimizing the proof mass and piezoelectric layer dimensions were theoretically shown to be effective methods for further improvement of bandwidth.

摘要

基于共振的频率调谐方法,包括机械调谐和电气调谐,可以拓宽压电能量收集器(PEH)的带宽。在这项工作中,提出了一种通过改变有效电极覆盖率(EEC)来调节近开路共振频率的新型耦合调谐机制。使用具有分段电极的双压电晶片压电悬臂梁的线性模型,来评估当EEC从0%变化到100%时,在开路共振频率附近的能量收集行为。根据理论分析,发现EEC的变化会导致耦合强度的改变,这与PEH的近开路共振频率呈正相关。构建了两个基于PZT和PZT-PT的具有分段电极的悬臂式PEH,以验证耦合调谐机制。分析和实验结果表明,通过耦合共振频率调谐方法,带宽和平均功率都有显著提高。此外,理论表明,采用特殊的压电单晶以及优化质量块和压电层尺寸是进一步提高带宽的有效方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0555/9865955/95674027c092/micromachines-14-00105-g001.jpg

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