TY - JOUR
T1 - Faulty Feeder Detection for Successive Single Phase-to-Ground Faults Based on Line Model Recognition and Correlation Comparison
AU - Yuan, Jiawei
AU - Feng, Chuan
AU - Ji, Yueming
AU - Liu, Xintong
AU - Dong, Xuan
AU - Liu, Jun
AU - Jiao, Zaibin
N1 - Publisher Copyright:
© 1986-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - When a single phase-to-ground (SPG) fault occurs in distribution networks, the over-voltages in non-fault phases may cause insulation damage to entire networks, potentially leading to a secondary SPG fault in feeders. Existing detection methods fail to explore the underlying mechanisms of SPG faults, resulting in unsatisfactory detection performance in practical applications. Moreover, they cannot identify the second faulty feeder under successive SPG (SSPG) faults, thereby increasing the risks of bushfires and casualties. This paper proposes a faulty-feeder detection method for SSPG faults based on line model recognition and correlation comparison. Firstly, the fault characteristics under SPG and SSPG faults are analyzed, revealing that differences in the equivalent line models are essential for distinguishing between faulty and healthy feeders. Secondly, the derivative of zero-sequence voltage reflecting the capacitance characteristics is compared with the measured zero-sequence currents from the perspectives of similarity and distance. The first faulty feeder is detected using cosine similarity comparison, while the second faulty feeder is identified using Euclidean distance comparison. Thirdly, a comprehensive detection criterion is constructed based on the cooperation of the similarity comparison method and distance comparison method. The feasibility and applicability are verified using various simulation data, field tests, and practical data tests.
AB - When a single phase-to-ground (SPG) fault occurs in distribution networks, the over-voltages in non-fault phases may cause insulation damage to entire networks, potentially leading to a secondary SPG fault in feeders. Existing detection methods fail to explore the underlying mechanisms of SPG faults, resulting in unsatisfactory detection performance in practical applications. Moreover, they cannot identify the second faulty feeder under successive SPG (SSPG) faults, thereby increasing the risks of bushfires and casualties. This paper proposes a faulty-feeder detection method for SSPG faults based on line model recognition and correlation comparison. Firstly, the fault characteristics under SPG and SSPG faults are analyzed, revealing that differences in the equivalent line models are essential for distinguishing between faulty and healthy feeders. Secondly, the derivative of zero-sequence voltage reflecting the capacitance characteristics is compared with the measured zero-sequence currents from the perspectives of similarity and distance. The first faulty feeder is detected using cosine similarity comparison, while the second faulty feeder is identified using Euclidean distance comparison. Thirdly, a comprehensive detection criterion is constructed based on the cooperation of the similarity comparison method and distance comparison method. The feasibility and applicability are verified using various simulation data, field tests, and practical data tests.
KW - Correlation comparison
KW - equivalent model
KW - faulty-feeder detection
KW - line model recognition
KW - successive single-phase-to-ground faults
UR - https://www.scopus.com/pages/publications/105001557588
U2 - 10.1109/TPWRD.2024.3517836
DO - 10.1109/TPWRD.2024.3517836
M3 - 文章
AN - SCOPUS:105001557588
SN - 0885-8977
VL - 40
SP - 750
EP - 763
JO - IEEE Transactions on Power Delivery
JF - IEEE Transactions on Power Delivery
IS - 2
ER -