TY - JOUR
T1 - A sequential reclosing strategy for distribution lines with permanent fault identification capability
AU - Chang, Zhongxue
AU - Li, Huan
AU - Li, Xinyao
AU - Tan, Weibin
AU - Song, Guobing
N1 - Publisher Copyright:
© 2026
PY - 2026/11
Y1 - 2026/11
N2 - Identifying fault properties before reclosing mitigates secondary impacts caused by traditional three-phase automatic reclosing onto permanent faults in distribution networks. While existing literature proposes detection-based reclosing for identification, low sensitivity and the influence of neutral grounding modes remain problematic. This paper proposes a sequential reclosing strategy with permanent fault identification capability for both grounding and phase-to-phase faults. First, an analytical model for detection-based reclosing is developed to demonstrate that the fault current surge from single-phase reclosing is substantially lower than that of three-phase reclosing. Second, zero-sequence impedance expressions are derived for grounding faults; a criterion is then established based on the characteristic phase angle differences between transient and permanent faults. For phase-to-phase faults, a criterion utilizing the average Hausdorff distance algorithm is proposed to quantify line voltage waveform similarities. Finally, RTDS-based closed-loop tests under low-resistance grounding, ungrounded, and arc-suppression-coil grounding systems verify that the proposed scheme can reliably identify fault properties, tolerate high fault resistance, and remain independent of neutral grounding modes.
AB - Identifying fault properties before reclosing mitigates secondary impacts caused by traditional three-phase automatic reclosing onto permanent faults in distribution networks. While existing literature proposes detection-based reclosing for identification, low sensitivity and the influence of neutral grounding modes remain problematic. This paper proposes a sequential reclosing strategy with permanent fault identification capability for both grounding and phase-to-phase faults. First, an analytical model for detection-based reclosing is developed to demonstrate that the fault current surge from single-phase reclosing is substantially lower than that of three-phase reclosing. Second, zero-sequence impedance expressions are derived for grounding faults; a criterion is then established based on the characteristic phase angle differences between transient and permanent faults. For phase-to-phase faults, a criterion utilizing the average Hausdorff distance algorithm is proposed to quantify line voltage waveform similarities. Finally, RTDS-based closed-loop tests under low-resistance grounding, ungrounded, and arc-suppression-coil grounding systems verify that the proposed scheme can reliably identify fault properties, tolerate high fault resistance, and remain independent of neutral grounding modes.
KW - Distribution line
KW - Permanent fault identification
KW - Sequential reclosing
KW - Waveform similarity
KW - Zero-sequence impedance angle
UR - https://www.scopus.com/pages/publications/105040672858
U2 - 10.1016/j.epsr.2026.113397
DO - 10.1016/j.epsr.2026.113397
M3 - 文章
AN - SCOPUS:105040672858
SN - 0378-7796
VL - 260
JO - Electric Power Systems Research
JF - Electric Power Systems Research
M1 - 113397
ER -