微型压电能量采集器的可靠性试验及疲劳行为研究

Y. Yang, Y. Fu, C. T. Chen, S. C. Lin, J. Shieh, M. Veidt, W. Wu
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引用次数: 2

摘要

介绍了一种基于不锈钢衬底的高性能微型压电能量采集器。采用气溶胶沉积法在不锈钢衬底上沉积了厚度约为10 μm的PZT压电有源层。采用金属- mems工艺将PZT/不锈钢复合结构加工成悬臂梁形PEH。开发的悬臂式PEH换能器的尺寸约为1平方厘米,并附加了一个证明质量,以将其谐振频率调整到120赫兹左右,以便从直接驱动的交流电机中收集机械振动。在最优负载连接和0.5 g加速度激励下,PEH换能器的输出电压为8.9 Vp-p,输出功率为107.8 μW。为了实现PEH换能器在现场应用中的疲劳性能和可靠性,将PEH换能器驱动在自己的谐振频率下,在1.0 g加速度水平下进行了数百万次循环测试,并用激光扫描振动计测量了其振动模式。基于谐振频率的位移和电输出的减少,PEH换能器在1.0 g循环载荷下的工作寿命约为180万次。实验结果表明,由于压电陶瓷有源层微裂纹的发展,随着工作周期数的增加,第一、第二和第三模的谐振频率都向低频偏移。然而,相同的PEH换能器可以在0.5 g循环载荷下存活数百万次(在高数百万次),而谐振频率和电输出没有任何显着变化。结果证实了PEH换能器的工作极限,并建议对换能器进行进一步的保护和加固,以使其在高加速度载荷下工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Reliability Testing and Fatigue Behavior Study of Micro Piezoelectric Energy Harvester
In this paper, a high performance micro piezoelectric energy harvester (PEH) fabricated on stainless substrates is presented. A PZT piezoelectric active layer with a thickness of about 10 μm was deposited on a stainless steel substrate by the aerosol deposition method. The cantilever beam-shaped PEH was then fabricated by metal-MEMS processing of the PZT/stainless steel composite structure. The size of the cantilever PEH transducer developed was about 1 cm2 and a proof mass was attached to tune its resonant frequency to around 120 Hz for harvesting mechanical vibrations from direct drive AC motors. The PEH transducer showed an output voltage and an output power of 8.9 Vp-p and 107.8 μW, respectively, when connected with optimal load and excited under 0.5 g acceleration level. In order to realize the fatigue behavior and reliability of the PEH in field applications, the PEH transducer was driven at its own resonant frequency and tested under 1.0 g acceleration level for millions of cycles and the vibration modes were measured with a laser scanning vibrometer. The PEH transducer had an operating lifetime of about 1.8 million cycles at 1.0 g cyclic loading based on the shift of its resonant frequencies and the decrease in electrical output. The experimental results show the resonant frequencies of the first, second and third modes were all shifted to lower frequencies with increasing operation cycle number due to the development of microcracks in the ceramic PZT active layer. However, the same PEH transducer could survive millions of cycles (in the high millions) at 0.5 g cyclic loading without any significant changes in the resonant frequencies and electrical output. The results confirm the operating limits of the PEH transducer and suggest further protection and reinforcement are required for the transducer to operate at high acceleration loadings.
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