旋转车轮用磁致伸缩振动能量采集器的工作特性。

Huifang Liu, Weiwei Dong, Yunlong Chang, Yifei Gao, Wencheng Li
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引用次数: 4

摘要

从机床、风车叶片等中收集振动能量,并将其转化为电能为低功耗电子电路供电的做法,引起了专家学者的广泛关注。移动车辆中存在的大量振动可以被收集到轮胎压力监测中的动力传感器上。本文首次提出了一种以铁镓合金(磁致伸缩材料)为核心材料的旋转振动能量采集装置。该装置利用比利亚雷亚尔效应和法拉第电磁效应的耦合特性,将运动车辆产生的振动能量转化为电能。在完成磁致伸缩旋转振动能量采集器的设计后,通过实验详细研究了衬底材料、衬底尺寸、预磁化场布置等关键因素对装置收获能力的影响规律。采用电动机和激振器对收割机进行不同形式的激励,充分分析了车轮转动、路面颠簸、随机振动等工况下收割机的输出规律。此外,还研究了悬臂梁的变形与收割机性能的关系。结果表明,在加速度为9.6 g、转速为90 r/min时,收割机的输出电压可达1.22 V。验证了磁致伸缩收割机收集旋转振动能量的可行性,为进一步深入研究磁致伸缩收割机提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Working characteristics of a magnetostrictive vibration energy harvester for rotating car wheels.
The practice of harvesting vibration energy from machine tools, windmill blades, etc., and converting it into electric energy to power low-power electronic circuits has attracted wide attention from experts and scholars. Abundant vibrations that exist in the moving vehicle can be harvested to power sensors in tire pressure monitoring. In this paper, for the first time, a device is proposed to harvest the rotational vibration energy with the iron-gallium alloy (magnetostrictive material) as the core material. Such a device utilizes the coupling characteristics of Villarreal effect and Faraday electromagnetic effect to convert the vibration energy generated by the moving vehicle into electric energy. Upon completion of the design of the magnetostrictive rotational vibration energy harvester, the influence law of key factors, including substrate material, substrate size, and pre-magnetization field arrangement on the harvesting capability of the device, was studied in detail through experiments. An electric motor and vibration exciter were used to apply varied excitation forms to the harvester, and the output patterns of the harvester under conditions of wheel rotation, road bumps, and random vibration were fully analyzed. In addition, the correlation between the deformation of the cantilever beam and harvester performance was also investigated. The results have shown that at the acceleration of 9.6 g and the rotational speed of 90 r/min, the harvester can reach the output voltage of 1.22 V. Consequently, it demonstrates the feasibility of employing the magnetostrictive harvester to gather rotational vibration energy and provides theoretical guidance for further and deeper research on the harvester.
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