Localization Method of Wide-band Oscillation Disturbance Sources Based on Compressed Sensing and Graph Convolutional Neural Networks

被引:0
|
作者
Wang Y. [1 ]
Li C. [1 ]
Zhou X. [1 ]
Zhu L. [1 ]
Jiang Q. [1 ]
Zheng Z. [1 ]
机构
[1] College of Electrical Engineering, Sichuan University, Chengdu
来源
关键词
compressed sensing; graph convolutional neural network; oscillation source localization; renewable energy; time-space characteristic; wide-band oscillation;
D O I
10.13336/j.1003-6520.hve.20221861
中图分类号
学科分类号
摘要
The wide-band oscillation caused by the grid connection of new energy seriously threatens the security of the power grid. It is particularly necessary to realize the online location of the broadband oscillation source and take timely suppression measures to ensure the safety and stability of the system. In this paper, a broadband oscillator location method combining compression sampling and graph convolution neural network is proposed. This method firstly sparsely samples the time-series oscillation signal in the substation to obtain its low dimensional observation sequence as the time sequence information of the node, and then captures the adjacency of each node in the topology structure of the master station fusion system, comprehensively considers the time-space characteristics of the system oscillation, and uses graph convolution neural network to locate the oscillation disturbance sources. Finally, the broadband oscillation sample set is used for simulation verification. The results show that the proposed method has high positioning accuracy when the measurement data contains noise, the transmission data is missing and the transmission data is biased. © 2024 Science Press. All rights reserved.
引用
收藏
页码:1080 / 1089
页数:9
相关论文
共 26 条
  • [1] MA Ningning, XIE Xiaorong, HE Jingbo, Et al., Review of wide-band oscillation in renewable and power electronics highly integrated power systems, Proceedings of the CSEE, 40, 15, pp. 4720-4731, (2020)
  • [2] CHEN Lujie, XU Shiyun, SUN Huadong, Et al., A survey on wide-frequency oscillation for power systems with high penetration of power electronics, Proceedings of the CSEE, 41, 7, pp. 2297-2309, (2021)
  • [3] LIU Fang, LIU Wei, WANG Haodong, Et al., Review on oscillation mechanism and analysis methods of high proportion renewable energy power system, High Voltage Engineering, 48, 1, pp. 95-113, (2022)
  • [4] LI Congshan, LIU Tianqi, LI Xingyuan, Et al., Data fusion method of WAMS/SCADA hybrid measurements in power system state estimation, High Voltage Engineering, 39, 11, pp. 2686-2691, (2013)
  • [5] CHEN Lei, MIN Yong, HU Wei, Low frequency oscillation analysis and oscillation source location based on oscillation energy part one mathematical foundation and energy flow computation, Automation of Electric Power Systems, 36, 3, pp. 22-27, (2012)
  • [6] CHEN Lei, CHEN Yiping, MIN Yong, Et al., Low frequency oscillation analysis and oscillation source location based on oscillation energy part two method for oscillation source location and case studies, Automation of Electric Power Systems, 36, 4, pp. 1-5, (2012)
  • [7] HU Wei, LIN Tao, GAO Yuxi, Et al., Disturbance source location of forced power oscillation in regional power grid based on dissipation power, High Voltage Engineering, 38, 4, pp. 1006-1011, (2012)
  • [8] WU Shuangxi, XU Yanhui, ZHANG Sha, Et al., Research on propagation characteristics and locating method of low frequency oscillations induced by turbine generator unit, Power System Technology, 42, 6, pp. 1917-1921, (2018)
  • [9] WANG Yuhong, WANG Hongyu, YU Guangyuan, Et al., Sub-synchronous oscillation detection and modal parameter identification method based on synchrophasor, High Voltage Engineering, 49, 6, pp. 2557-2568, (2023)
  • [10] JIN Biao, YU Yiping, FAN Chen, Et al., Tracing method of sub-/super-synchronous oscillation based on interharmonic power flow calculation of wide frequency measurement, Electric Power Automation Equipment, 42, 8, pp. 221-228, (2022)