Miniaturized Broadband Vibration Energy Harvester With Piecewise-Linear Asymmetric Restoring Force

A. Masuda, F. Zhao
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引用次数: 2

Abstract

This paper presents a design study of a miniaturized broadband nonlinear vibration energy harvester (VEH) with piecewise-linear restoring force based on a mechanically-sprung resonator with stoppers. It is commonly recognized that a VEH based on a nonlinearly-sprung resonator can show broadband frequency characteristics while keeping its maximum power performance due to its bent resonance peak. The resonator to be investigated in this study consists of a magnet composite as a mass moving through an induction coil, two planar springs, and mechanical stoppers. The magnet composite is comprised of two repelling cylindrical magnets and a steel disk between them, all encapsulated in a thin stainless-steel cylinder. The planar springs with spiral-like shape are respectively connected to the both ends of the magnet composite so that they provide soft linear stiffness in a compact size. The mechanical stoppers installed to constrain the deformation of the spring give the resonator piecewise-linear hardening characteristics which effectively broaden the resonance band. In this study, the prototype VEH developed in the previous study is presented, and the gaps between the springs and stoppers are adjusted so that the resultant piecewise-linear restoring force shows symmetric or asymmetric property with respect to the equilibrium point. Experimental studies and analyses are carried out to examine the performance of the presented VEH in terms of the frequency response. The comparison of three different configurations of the stopper illustrates how the asymmetry in the bilinear restoring force affects the shape of the resonance peak. It is also suggested that the asymmetry may help the VEH operate in broader band by exploiting its ability of tailoring the resonance characteristics, which still needs further investigation.
具有分段线性不对称恢复力的小型化宽带振动能量采集器
本文提出了一种基于带挡板的机械弹簧谐振器的微型化分段线性恢复力宽带非线性振动能量采集器的设计研究。基于非线性簧载谐振腔的VEH由于其谐振峰的弯曲,可以在保持最大功率性能的同时显示宽带频率特性,这是公认的。本研究中所研究的谐振器由磁铁复合材料作为通过感应线圈的质量,两个平面弹簧和机械挡板组成。磁铁复合材料由两个相互排斥的圆柱形磁铁和它们之间的钢盘组成,全部封装在一个薄的不锈钢圆柱体中。螺旋形状的平面弹簧分别连接在磁铁复合材料的两端,使其在紧凑的尺寸下提供软线性刚度。为了约束弹簧的变形而安装的机械塞使谐振器具有分段线性硬化特性,从而有效地拓宽了谐振带。在本研究中,展示了在先前研究中开发的原型VEH,并调整了弹簧和塞子之间的间隙,从而使合成的分段线性恢复力相对于平衡点显示对称或不对称特性。实验研究和分析进行了检验性能提出的VEH在频率响应方面。通过对三种不同结构塞的比较,说明了双线性恢复力的不对称性如何影响共振峰的形状。本文还认为,这种不对称性可以利用其定制共振特性的能力,帮助VEH在更宽的频带内工作,这还需要进一步的研究。
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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