On the influence of an energy harvesting device on a dynamical system

T. Amer, A. Arab, A. Galal
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Abstract

This article studies the motion of a three degrees-of-freedom (DOF) dynamical system, which consists of two parts, a dynamic part, and an electromagnetic harvesting device. The composition of the system depends on the magnet oscillating in the coil of this device. An electric potential is exerted because of the electromotive force to obtain energy harvesting (EH). Lagrange's equations (LE) are used to derive the system’s equations of motion (EOM), which are solved analytically up to a third-order of approximation using the multiple-scales method (MSM). These solutions are considered novel, in which the mentioned method is applied to a novel dynamical system. The gained are confirmed through comparison with the numerical solutions of the EOM to reveal a high degree of consistency. To establish the system’s solvable conditions and modulation equations (ME), three scenarios of primary external resonance are investigated simultaneously. Certain diagrams of time histories for the amplitudes and phases of the examined dynamical system are plotted to show their behaviors at any given instance of time. The Routh–Hurwitz criteria (RHC) are used to establish the stability and instability regions in light of the graphs of resonance response curves. The presence of an energy harvester in dynamic devices helps us to convert vibrational motion into electrical energy that can be exploited in several applications in a variety of daily tasks, including structural and environmental monitoring, military applications, space exploration, and remote medical sensing.
能量收集装置对动力系统的影响
本文研究了一个三自由度(DOF)动力系统的运动,该系统由两部分组成,一部分是动力部分,另一部分是电磁采集装置。系统的组成取决于在该装置线圈中摆动的磁铁。由于电动势的作用,产生了电动势,从而获得能量收集(EH)。拉格朗日方程(LE)用于推导系统的运动方程(EOM),使用多尺度方法(MSM)对其进行三阶近似分析求解。这些解法被认为是新颖的,其中提到的方法被应用于一个新颖的动力系统。通过与 EOM 的数值解进行比较,证实了所获得的解具有高度一致性。为了确定系统的可解条件和调制方程(ME),我们同时研究了初级外部共振的三种情况。绘制了所研究动态系统振幅和相位的某些时间历程图,以显示它们在任何给定时间内的行为。根据共振响应曲线图,采用 Routh-Hurwitz 准则(RHC)来确定稳定和不稳定区域。动态装置中能量收集器的存在有助于我们将振动运动转化为电能,这些电能可应用于各种日常任务,包括结构和环境监测、军事应用、太空探索和远程医疗传感。
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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