DocumentCode
1498302
Title
A Novel Approach for Fault Location of Overhead Transmission Line With Noncontact Magnetic-Field Measurement
Author
Huang, Qi ; Zhen, Wei ; Pong, Philip W T
Author_Institution
Sichuan Provincial Key Lab. of Power Syst. Wide-area Meas. & Control, Univ. of Electron. Sci. & Technol. of China (UESTC), Chengdu, China
Volume
27
Issue
3
fYear
2012
fDate
7/1/2012 12:00:00 AM
Firstpage
1186
Lastpage
1195
Abstract
Prompt and accurate location of faults in a large- scale transmission system can accelerate system restoration, reduce outage time, and improve system reliability. Traditional approaches are categorized into traveling-wave-based and impedance-based measurement techniques. The traveling-wave-based approach requires detection devices to connect to the high-voltage transmission line, making the solution complex and costly. And the impedance-measurement-based approach is highly dependent on the quality of the signal and affected by fault resistance, ground resistance and non-homogeneity in line configuration. Hence, these approaches may cause a location error that is unacceptable in certain operation cases. In this paper, a novel approach based on noncontact magnetic-field measurement is proposed. With the magnetic field measured along the transmission line by using highly sensitive, broadband, and a low-cost magnetoresistive magnetic sensor, the fault span can be located. The collected data can be further used for identifying the fault type and location within the fault span. The overall system was designed and numerical simulations were performed on typical tower configurations. The simulated results verify the validity of the proposed scheme.
Keywords
electric impedance measurement; fault location; magnetic field measurement; magnetic sensors; magnetoresistive devices; numerical analysis; power overhead lines; power system restoration; power transmission reliability; fault location; fault resistance; fault span; fault type; ground resistance; high-voltage transmission line; impedance-based measurement techniques; large-scale transmission system; line configuration; low-cost magnetoresistive magnetic sensor; noncontact magnetic-field measurement; numerical simulations; outage time reduction; overhead transmission line; system reliability improvement; system restoration; typical tower configurations; Circuit faults; Current measurement; Fault location; Magnetic sensors; Power transmission lines; Transmission line measurements; Fault location; magnetoresistive magnetic sensor; noncontact magnetic-field measurement; overhead transmission line;
fLanguage
English
Journal_Title
Power Delivery, IEEE Transactions on
Publisher
ieee
ISSN
0885-8977
Type
jour
DOI
10.1109/TPWRD.2012.2190427
Filename
6185712
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