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High-Impedance Grounding Fault Protection in Distribution Networks Based on Single-Phase Isolation Transformer and Phase-Edge Additional Capacitance

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Listed:
  • Hua Zhang

    (State Grid Sichuan Electric Power Research Institute, Chengdu 610095, China
    Power System Security and Operation Key Laboratory of Sichuan, Chengdu 610095, China)

  • Xueneng Su

    (State Grid Sichuan Electric Power Research Institute, Chengdu 610095, China
    Power System Security and Operation Key Laboratory of Sichuan, Chengdu 610095, China)

  • Zongmin Yu

    (Sichuan Energy Internet Research Institute, Tsinghua University, Chengdu 610213, China)

  • Jing Wang

    (Sichuan Energy Internet Research Institute, Tsinghua University, Chengdu 610213, China)

  • Cheng Long

    (State Grid Sichuan Electric Power Research Institute, Chengdu 610095, China
    Power System Security and Operation Key Laboratory of Sichuan, Chengdu 610095, China)

Abstract

High impedance grounding faults (HIGFs) are a common yet difficult-to-detect issue in distribution networks. Characterized by low fault currents and prolonged durations, they pose a significant risk of triggering secondary hazards such as wildfires. Existing HIGF prevention and control technologies face challenges in effectively addressing arc ignition, fault current limitation, and wildfire mitigation. To tackle these limitations, this paper proposes a novel asymmetric operational structure incorporating a single-phase isolation transformer and supplementary edge-phase capacitance. Through theoretical modeling and simulation analysis, the interrelations among fault current, phase voltage, zero-sequence voltage, and HIGF characteristics are systematically explored. A coordinated control strategy is developed to optimize three-phase voltage distribution within the distribution network. Simulation results demonstrate that the proposed configuration significantly reduces edge-phase voltages, suppresses fault current levels, prevents arc initiation, extends arc ignition delay times, and consequently mitigates wildfire risk. This study presents a new technical pathway for HIGF prevention and control, offering both practical engineering value and theoretical insight.

Suggested Citation

  • Hua Zhang & Xueneng Su & Zongmin Yu & Jing Wang & Cheng Long, 2025. "High-Impedance Grounding Fault Protection in Distribution Networks Based on Single-Phase Isolation Transformer and Phase-Edge Additional Capacitance," Energies, MDPI, vol. 18(18), pages 1-24, September.
  • Handle: RePEc:gam:jeners:v:18:y:2025:i:18:p:4797-:d:1745575
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    References listed on IDEAS

    as
    1. Yu He & Xinhui Zhang & Wenhao Wu & Jun Zhang & Wenyuan Bai & Aiyu Guo & Yu Chen, 2022. "Faulty Line Selection Method Based on Comprehensive Dynamic Time Warping Distance in a Flexible Grounding System," Energies, MDPI, vol. 15(2), pages 1-16, January.
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