Self-powered sensing of power transmission lines galloping based on piezoelectric energy harvesting

被引:23
|
作者
Gao, Sihang [1 ]
Zeng, Xisong [1 ]
Tao, Bo [1 ]
Ke, Tingjing [2 ]
Feng, Shaoxuan [1 ]
Chen, Yiduo [1 ]
Zhou, Jie [1 ]
Lan, Wenyu [1 ]
机构
[1] Chongqing Univ Posts & Telecommun, Key Lab Ind Internet Things & Networked Control, Minist Educ, Chongqing 400065, Peoples R China
[2] State Grid Chongqing Elect Power Co Chongqing, Chongqing 400015, Peoples R China
关键词
Conductor galloping; Power transmission system; Piezoelectric energy harvester; Frequency boost conversion; Self -powered sensing; LOW-FREQUENCY VIBRATIONS; TRIBOELECTRIC NANOGENERATORS; INTERPHASE SPACERS; FAULT-LOCATION; PERFORMANCE; CONVERSION; SENSORS; MOTION;
D O I
10.1016/j.ijepes.2022.108607
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Online monitoring sensors are a feasible solution for conductor galloping that greatly harms the stable operation of power transmission systems. However, power supply that drives sensors has become one of the bottlenecks restricting the development of distributed sensing systems. This work initially proposes harvesting the energy of conductor galloping and joint utilization to assess conductor galloping degree. A swinging piezoelectric energy harvester based on frequency boost conversion is also proposed. The output characteristics of harvester and the physical validation of the scale model of power transmission line galloping are further explored. Experiment results showed a maximum output voltage and current of 29.6 V and 29 mu A, respectively, under the characteristic conditions of conductor galloping. The corresponding load capacity of the harvester reached a maximum power output of 155.58 mu W under minimum resistance of 70 k Omega at 35 cm vibration amplitude and 1.3 Hz frequency. The conductor galloping testing platform indicated that the frequency boost conversion effect was weakened due to the occurrence of torsion movement during conductor galloping, and the output presented a nonlinear vari-ation with the vibration amplitude and frequency. The degree and direction of conductor galloping can be preliminarily judged according to the output trend, and the maximum output power of load capacity of the harvester reached 101.5 mu W under 107 M Omega resistance at 1.3 Hz vibration frequency, validating that the proposed energy harvesting system is promising for self-powered sensing applications in low-power monitoring sensors for conductor galloping.(c) 2017 Elsevier Inc. All rights reserved.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Reviving Vibration Energy Harvesting and Self-Powered Sensing by a Triboelectric Nanogenerator
    Chen, Jun
    Wang, Zhong Lin
    JOULE, 2017, 1 (03) : 480 - 521
  • [42] Wireless Technologies for Energy Harvesting and Transmission for Ambient Self-Powered Systems
    Jiang, Chengmei
    Li, Xunjia
    Lian, Sophie Wan Mei
    Ying, Yibin
    Ho, John S.
    Ping, Jianfeng
    ACS NANO, 2021, 15 (06) : 9328 - 9354
  • [43] Theoretical Assessment on Piezoelectric Energy Harvesting in Smart Self-powered Asphalt Pavements
    Yisheng Chen
    He Zhang
    Liwei Quan
    Zhicheng Zhang
    Chaofeng Lü
    Journal of Vibration Engineering & Technologies, 2018, 6 : 1 - 10
  • [44] An optimized self-powered P-SSHI circuit for piezoelectric energy harvesting
    Zouari, Manel
    Naifar, Slim
    Gotz, Martin
    Derbel, Nabil
    Kanoun, Olfa
    2017 IEEE INTERNATIONAL INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE (I2MTC), 2017, : 594 - 599
  • [45] Towards a Green and Self-Powered Internet of Things Using Piezoelectric Energy Harvesting
    Shirvanimoghaddam, Mahyar
    Shirvanimoghaddam, Kamyar
    Abolhasani, Mohammad Mahdi
    Farhangi, Majid
    Barsari, Vahid Zahiri
    Liu, Hangyue
    Dohler, Mischa
    Naebe, Minoo
    IEEE ACCESS, 2019, 7 : 94533 - 94556
  • [46] A mechanical solution of self-powered SSHI interface for piezoelectric energy harvesting systems
    Liu, Haili
    Ge, Cong
    Liang, Junrui
    ACTIVE AND PASSIVE SMART STRUCTURES AND INTEGRATED SYSTEMS 2015, 2015, 9431
  • [47] Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
    Ammar, Meriam Ben
    Sahnoun, Salwa
    Fakhfakh, Ahmed
    Viehweger, Christian
    Kanoun, Olfa
    SENSORS, 2023, 23 (04)
  • [48] Theoretical Assessment on Piezoelectric Energy Harvesting in Smart Self-powered Asphalt Pavements
    Chen, Yisheng
    Zhang, He
    Quan, Liwei
    Zhang, Zhicheng
    Lu, Chaofeng
    JOURNAL OF VIBRATION ENGINEERING & TECHNOLOGIES, 2018, 6 (01) : 1 - 10
  • [49] An Intelligent Self-Powered Pipeline Inner Spherical Detector With Piezoelectric Energy Harvesting
    Rui, Xiaobo
    Zeng, Zhoumo
    Zhang, Yu
    Li, Yibo
    Huang, Xinjing
    Liu, Yue
    Xu, Tianshu
    IEEE ACCESS, 2019, 7 : 104621 - 104629
  • [50] Core-shell structured silk Fibroin/PVDF piezoelectric nanofibers for energy harvesting and self-powered sensing
    Siqi Wang
    Kunming Shi
    Bin Chai
    Shichong Qiao
    Zhuoli Huang
    Pingkai Jiang
    Xingyi Huang
    Nano Materials Science, 2022, 4 (02) : 126 - 132