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Development of the magnetic force-induced dual vibration energy harvester using a unimorph cantilever

机译:使用单身悬臂的磁力引起的双振动能量收割机的开发

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In this study, a high frequency piezoelectric energy harvester converted from the human low vibrated motion energy was newly developed. This hybrid energy harvester consists of the unimorph piezoelectric cantilever, the pendulum and a pair of permanent magnets. One magnet was attached at the edge of cantilever, and the counterpart magnet at the edge of pendulum. The mechanical energy provided through the human walking motion, which is a typical ubiquitous existence of vibration, is converted to the electric energy via the piezoelectric unimorph cantilever vibration. At first, we studied the energy convert mechanism and analyze the performance of novel energy harvester, where the resonance free vibration of unimorph piezoelectric cantilever generated a high electric power. Next, we equipped the counterpart permanent magnet at the edge of pendulum, which vibrates with a very low frequency caused by the human walking. Then the counterpart magnet was set at the edge of unimorph piezoelectric cantilever, which vibrated with a high frequency. This low-to-high frequency convert "dual vibration system" can be characterized as an enhanced energy harvester. We examined and obtained average values of voltage and power in this system, as 8.31 mV and 0.33 μW. Those results show the possibility to apply for the energy harvester in the portable and implantable Bio-MEMS devices.
机译:在这项研究中,新开发了一种从人低振动运动转化的高频压电能量收割机。这种混合能源收割机由单身压电悬臂,摆锤和一对永磁体组成。一块磁铁在悬臂边缘附着,在摆锤边缘处的配对磁铁。通过人行道运动提供的机械能量是通过压电单身悬臂振动转换为电能的典型的无处态存在。首先,我们研究了能源转换机制,分析了新型能源收割机的性能,其中单身压电悬臂的共振振动产生了高电力。接下来,我们在摆锤边缘配备了对应的永磁体,其用由人行道引起的非常低的频率振动。然后将对应磁铁设置在单身压电悬臂的边缘,其振动高频。这种低频转换为“双振动系统”可作为增强的能源收割机。我们检查并获得了该系统中电压和功率的平均值,为8.31 mV和0.33μW。这些结果表明,在便携式和可植入的生物MEMS器件中申请能量收割机的可能性。

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