An electromagnetic-triboelectric hybrid generator (ETHG) for harvesting broadband and multi-directional vibration energy from transmission lines

Huicong Liu , Zizhao Wang , Yurui Shang , Zhenming Li , Wei Tang , Zhen Li , Wei Liu , Mingyang Liu , Yuyang Sun , Yongling Lu
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Abstract

Given the ubiquity of wind-induced vibrations on transmission lines, harvesting this energy to power wireless sensors is crucial for developing smart grids toward the electric Internet of Things (eIoT). This paper introduces a high-power electromagnetic-triboelectric hybrid generator (ETHG) as a self-powered solution for smart grid monitoring, addressing limitations of existing generators, including single-direction operation, narrow working bandwidth, and low output power. The ETHG utilizes an innovative pick-up unit featuring a multi-spring mass structure to harvest vibration energy from arbitrary directions and multiple frequencies ranging from 14 to 24 Hz. The electromagnetic generator (EMG) component adopts a multiple magnet-coil arrangement to generate high current and output power. The origami-inspired triboelectric nanogenerator (origami-TENG) component, made of folded conductive fabrics and conductive fabric/fluorinated ethylene propylene (FEP) elastic strips, offers advantages of ultralight and high voltage output. By seamlessly integrating a pickup unit with a hybrid power generation module featuring complementary signals, ETHG performance is enhanced in an aeolian vibration environment characterized by random, low-level excitations. Under a 1 g sweep excitation along the Z-axis with a 5-fold origami configuration, the EMG and TENG components achieve maximum voltage outputs of 3.28 and 523.8 V, with corresponding power outputs reaching 46.9 and 8.2 mW, respectively. Compared to relevant reported generators from transmission line vibrations, the normalized power density of 0.88 mW/cm3·g2 is improved by one order of magnitude. A power management circuit (PMC) is proposed to efficiently manage the electromagnetic-triboelectric hybrid signals, increasing the EMG and TENG charging speeds by 172 and 333%, respectively, compared to a rectifier bridge scheme. A vibration energy harvesting system (VEHS) comprising multiple ETHGs and a PMC supports a wireless sensing system for online monitoring of temperature, humidity, and vibration of transmission lines. This work highlights the potential of ETHG as a sustainable power source for smart grids towards eIoT applications.

Abstract Image

一种电磁-摩擦-电混合发电机(ETHG),用于从输电线路中收集宽带和多向振动能量
考虑到传输线上无处不在的风力振动,收集这种能量为无线传感器供电对于开发面向电子物联网(eIoT)的智能电网至关重要。本文介绍了一种大功率电磁摩擦电混合发电机(ETHG)作为智能电网监测的自供电解决方案,解决了现有发电机单向运行、工作带宽窄、输出功率低的局限性。ETHG采用了一个创新的多弹簧质量结构的拾取单元,可以从14到24 Hz的任意方向和多个频率收集振动能量。电磁发生器(EMG)组件采用多磁体线圈布置,产生大电流和输出功率。折纸式摩擦电纳米发电机(origami-TENG)组件由折叠的导电织物和导电织物/氟化乙丙烯(FEP)弹性条制成,具有超轻和高电压输出的优点。通过将拾取单元与具有互补信号的混合发电模块无缝集成,在随机、低水平激励的风成振动环境中,ETHG的性能得到了增强。在z轴1 g扫描激励和5倍折纸结构下,EMG和TENG组件的最大电压输出分别为3.28和523.8 V,相应的功率输出分别为46.9和8.2 mW。与相关报道的输电线路振动发电机相比,归一化功率密度0.88 mW/cm3·g2提高了一个数量级。提出了一种有效管理电磁摩擦电混合信号的电源管理电路(PMC),与整流桥方案相比,EMG和TENG充电速度分别提高了172和333%。由多个ethg和PMC组成的振动能量收集系统(VEHS)支持无线传感系统,用于在线监测传输线的温度、湿度和振动。这项工作突出了ETHG作为智能电网面向eIoT应用的可持续电源的潜力。
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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