A vibro-impact triboelectric energy harvester with magnetic bistability for wide bandwidth

Qais Qaseem, Alwathiqbellah Ibrahim
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Abstract

Energy from mechanical vibrations is prevalent in the ambient, which can be effectively harvested using triboelectric generators. However, the efficiency of the harvesters is limited by the narrow bandwidth. Herein, we propose combining Vibro-impact and magnetic nonlinearity for Polydimethylsiloxane-based triboelectric energy harvesters to extend the operation bandwidth and enhance the efficiency of the traditional triboelectric harvesters. Our harvester design consists of a cantilever beam with a tip magnet facing another fixed magnet at the same polarity, inducing a nonlinear magnetic repulsive force. The lower surface of the tip magnet acts as an upper electrode of a triboelectric harvester, while the lower electrode with attached Polydimethylsiloxane (PDMS) insulator. Under the effect of base excitation, the system can vibrate in monostable or bistable oscillations by varying the distance between the two magnets, causing an impact on the triboelectric electrodes, and an alternative electrical signal is generated at a wide range of frequencies. The harvester’s static and dynamic behaviors are investigated theoretically and experimentally validated at different separation distances between the two magnets. We achieved higher bandwidth by combining Vibro-impact with magnetic nonlinearity, and triboelectric energy harvesters show promising applications for future wireless sensor networks at wider operation frequency bandwidth.
宽带磁双稳振动冲击摩擦电能量采集器
来自机械振动的能量在环境中很普遍,可以使用摩擦发电机有效地收集。然而,收割机的效率受到窄带宽的限制。为此,我们提出将振动冲击和磁非线性结合在聚二甲基硅氧烷摩擦电能量采集器上,以扩大传统摩擦电能量采集器的工作带宽并提高其效率。我们的收割机设计包括一个悬臂梁,其尖端磁铁与另一个相同极性的固定磁铁相对,产生非线性磁排斥力。顶端磁铁的下表面作为摩擦电收割机的上电极,而下电极与附着的聚二甲基硅氧烷(PDMS)绝缘体。在基极激励的作用下,通过改变两个磁体之间的距离,使摩擦电极产生冲击,系统可以在单稳态或双稳态振荡中振动,并在很宽的频率范围内产生替代电信号。研究了两磁体在不同分离距离下的静、动态特性,并进行了实验验证。通过将振动冲击与磁非线性相结合,我们实现了更高的带宽,摩擦电能量采集器在更宽的工作频率带宽下,在未来的无线传感器网络中显示出很好的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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