Spatial Optimization of Piezoelectric Energy Scavenger from Current-Carrying Wire

O. Aragonez, N. Jackson
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引用次数: 2

Abstract

Harvesting energy by coupling a magnetic proof mass with current flowing through a wire has recently been investigated as a method to power wireless sensor networks. However, the location of the cantilever and magnet in relation to the wire is critical to optimize performance. The configuration of the wire and the stiffness of the cantilever are also critical for device performance. This paper investigates optimizing the spatial location of the energy harvester and magnetic proof mass in relation to the wire for smart grid applications. Two different types of wires (solid and braided) copper wires were used with varying current up to 20A. This is conducted using a macro-scale piezoelectric cantilever with the goal to gain insight to apply to micro-electromechanical devices. Two different piezoelectric cantilevers with varying stiffness were tuned to operate at 60 Hz resonant frequency, using NdFeB magnet. The magnets act as a proof mass to lower the frequency while also coupling to the magnetic field from the current carrying wire, generating a sinusoidal force. Experimental and finite element modelling determined that the optimal location of the magnet for a solid wire was between 33° and 40° depending on the cantilever stiffness.
载流导线压电能量清除器的空间优化
通过将防磁质量与流经导线的电流耦合来收集能量,最近被研究作为一种为无线传感器网络供电的方法。然而,悬臂和磁铁相对于导线的位置对于优化性能至关重要。导线的结构和悬臂的刚度对器件性能也至关重要。本文研究了智能电网应用中能量采集器和防磁质量相对于导线的空间位置优化。使用两种不同类型的导线(实心和编织)铜线,电流最高可达20A。这是使用宏观压电悬臂梁进行的,目的是获得应用于微机电设备的洞察力。使用钕铁硼磁铁,将两种不同刚度的压电悬臂梁调谐到60 Hz的谐振频率。磁铁作为一个证明质量,以降低频率,同时也耦合到磁场从载流导线,产生一个正弦力。实验和有限元模型确定了磁体的最佳位置为33°和40°之间,这取决于悬臂刚度。
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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