Modeling of a Novel Magneto-electro-elastic Energy Harvesting System Subjected to Applied Electric Voltage with Simultaneous Use as an Electrical Actuator System

M. Moory Shirbani, M. Shishehsaz
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引用次数: 1

Abstract

This paper introduces a novel harvester to store the electrical power, which comes from the power of external applied electrical voltage. In the last decade, most of the energy harvesters have been designed and analyzed in the form of cantilever beams. In the present article, the harvesters are analyzed as a cantilever beam with the Euler-Bernoulli beam assumptions. The beam of energy harvester consists of an active Magneto-electro-elastic (MEE) layer attached to the piezoelectric layer. Assuming that the connection of these layers is perfect, the uni-morph configuration is investigated. The magneto-electro-elastic governing coupled equations of the MEE energy harvester are derived for a harmonic external applied electrical voltage in the transversal direction based on Euler-Bernoulli theory, Gaussian law, and Faraday law. These equations are solved analytically to find out the amount of harvested power and voltage. The obtained results state that by adjusting the electromechanical parameters, up to 66% of the input power and 27% of the applied voltage can be harvested. Choosing the right geometric parameters can increase the harvested power and voltages connected to the electrodes and external coil by 120.31%, 49.05% and 60.98%, respectively. Finally, the results prove the usefulness and efficiency of the dual-usage (actuator-harvester) of the new energy harvester.
一种新型磁-电弹性能量收集系统在外加电压作用下的建模并同时用作电动执行器系统
本文介绍了一种存储外部外加电压电能的新型收割机。在过去的十年中,大多数能量收集器都是以悬臂梁的形式进行设计和分析的。在本文中,利用欧拉-伯努利梁假设,将收割机作为悬臂梁进行分析。能量收集器的光束由附着在压电层上的主动磁电弹性(MEE)层组成。假设这些层的连接是完美的,研究了单形态结构。基于欧拉-伯努利理论、高斯定律和法拉第定律,推导了横向谐波外加电压下MEE能量采集器的磁-电弹性控制耦合方程。对这些方程进行解析求解,求出功率和电压的收获量。结果表明,通过调整机电参数,可以获得高达66%的输入功率和27%的施加电压。选择合适的几何参数可以使电极和外部线圈的收获功率和电压分别提高120.31%、49.05%和60.98%。最后,实验结果证明了新能源采集器双用途(作动器-采集器)的实用性和有效性。
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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