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Frequency adjustable MEMS vibration energy harvester

机译:频率可调MEMS振动能量采集器

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摘要

Ambient mechanical vibrations offer an attractive solution for powering the wireless sensor nodes of the emerging "Internet-of-Things". However, the wide-ranging variability of the ambient vibration frequencies pose a significant challenge to the efficient transduction of vibration into usable electrical energy. This work reports the development of a MEMS electromagnetic vibration energy harvester where the resonance frequency of the oscillator can be adjusted or tuned to adapt to the ambient vibrational frequency. Micro-fabricated silicon spring and double layer planar micro-coils along with sintered NdFeB micro-magnets are used to construct the electromagnetic transduction mechanism. Furthermore, another NdFeB magnet is adjustably assembled to induce variable magnetic interaction with the transducing magnet, leading to significant change in the spring stiffness and resonance frequency. Finite element analysis and numerical simulations exhibit substantial frequency tuning range (25% of natural resonance frequency) by appropriate adjustment of the repulsive magnetic interaction between the tuning and transducing magnet pair. This demonstrated method of frequency adjustment or tuning have potential applications in other MEMS vibration energy harvesters and micromechanical oscillators.
机译:环境机械振动为新兴的“物联网”的无线传感器节点供电提供了一种有吸引力的解决方案。然而,环境振动频率的广泛变化对将振动有效地转换为可用电能提出了重大挑战。这项工作报告了MEMS电磁振动能量采集器的开发,该振荡器可以调节或调整振荡器的共振频率以适应环境振动频率。利用微制造的硅弹簧和双层平面微线圈以及烧结的钕铁硼微磁体来构造电磁换能机制。此外,另一个NdFeB磁体被可调节地组装以引起与换能磁体的可变磁相互作用,从而导致弹簧刚度和共振频率发生显着变化。有限元分析和数值模拟通过适当调整调谐和换能磁体对之间的排斥磁相互作用,显示出相当大的频率调谐范围(自然共振频率的25%)。这种经过证明的频率调整或调谐方法在其他MEMS振动能量采集器和微机械振荡器中具有潜在的应用。

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