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Experimental Study on Performance Enhancement of a Piezoelectric Vibration Energy Harvester by applying Self-Resonating Behavior

机译:利用自谐振行为增强压电振动能量采集器性能的实验研究

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This paper introduces a passive self-tuning energy harvester by applying self-resonating behavior. Under certain operating conditions, self-resonating systems have the capability to passively adjust their dynamical characteristics until the whole system becomes resonant. A clamped-clamped beam with an attached mass sliding freely with a slight gap showed self-resonating behavior. Under a harmonic input excitation and a well-defined operating regime, the mass moved along the beam thus causing a change in the natural frequency of the structure, and then stopped at the position where the natural frequency matched the excitation frequency, resulting in a significant increase in the vibration amplitude. For harvesting energy, a piezoelectric element was glued at one end of the beam. The operating regime of the self-resonating behavior was found experimentally in the two halves of the beam. In the half containing the piezoelectric element, self-resonating behavior was achieved between 126 Hz and 143 Hz. In the other half, it was achieved between 135 Hz and 165 Hz. Maximum power output of 2.5 mW was obtained under an input excitation of 4.92?m/s2 and 148 Hz. It is to be concluded that applying self-resonating behavior on energy harvesting provides a promising broadband technique.
机译:通过应用自谐振行为,介绍了一种无源自调谐能量收集器。在某些操作条件下,自谐振系统具有被动调节其动态特性的能力,直到整个系统都处于谐振状态。带有附加质量的夹钳自由滑动且间隙很小的夹钳表现出自谐振行为。在谐波输入激励和明确定义的工作状态下,质量沿梁移动,从而导致结构的固有频率发生变化,然后停止在固有频率与激励频率匹配的位置,从而产生了明显的变化。振动幅度增加。为了收集能量,在梁的一端粘贴了一个压电元件。在两束光束的实验中发现了自谐振行为的运行方式。在包含压电元件的一半中,在126 Hz和143 Hz之间实现了自谐振行为。在另一半中,达到了135 Hz至165 Hz。在4.92?m / s2和148 Hz的输入激励下可获得2.5 mW的最大功率输出。可以得出结论,在能量收集中应用自谐振行为提供了一种有前途的宽带技术。

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