Electric Power ›› 2025, Vol. 58 ›› Issue (8): 12-22, 30.DOI: 10.11930/j.issn.1004-9649.202408060

• Flexible Resource Planning Operation and Dynamic Control of AC/DC Power Distribution System • Previous Articles     Next Articles

Single-Pole High-Resistance Grounding Protection for DC Distribution Lines Based on Current Integral Quantity Correlation

JI Xingquan1(), MAO Huizong1(), YE Pingfeng2(), LIU Zhiqiang3, ZHANG Xiangxing1, HUANG Xinyue1, NI Yachao4   

  1. 1. College of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao 266590, China
    2. College of Electrical and Information Engineering, Quzhou University, Quzhou 324000, China
    3. State Grid Shandong Electric Power Company Jinan Power Supply Company, Jinan 250012, China
    4. State Grid Shandong Electric Power Company Qihe County Power Supply Company, Dezhou 251100, China
  • Received:2024-08-17 Online:2025-08-26 Published:2025-08-28
  • Supported by:
    This work is supported by Natural Science Foundation of Shandong Province (No.ZR2022ME219), China Postdoctoral Science Foundation (No.2023M734092).

Abstract:

When a single-pole high-resistance grounding fault occurs in a DC distribution system, the transient current amplitude is small and the fault characteristics are weak, making it hard for the existing protection methods to provide reliable protection for the DC system. Therefore, a single-pole grounding protection method is proposed for the DC distribution lines based on current integral quantity correlation. According to the transient current characteristics of the high-resistance grounding faults, distinct polarity difference features of fault currents are identified between internal and external faults. The current integral sequence is calculated to highlight the overall change situation of the current. Pearson correlation analysis is employed to quantify the current correlation degree between the line terminals. Based on the correlation level, a fault detection criterion is constructed to achieve protection against single-pole grounding faults in DC distribution lines. Based on PSCAD/EMTDC simulation platform, the simulation results show that the proposed method can provide accurate fault protection under relatively weak fault features, with high protection sensitivity and reliability.

Key words: current variation characteristics, DC distribution network, distributed capacitance, current differential protection