DocumentCode :
1953722
Title :
Neural network approach for fault location in unbalanced distribution networks with limited measurements
Author :
Thukaram, D. ; Shenoy, U.J. ; Ashageetha, H.
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Sci., Bangalore
fYear :
0
fDate :
0-0 0
Abstract :
This paper presents an artificial neural network (ANN) approach for locating faults in distribution systems. Different from the traditional fault section estimation methods, the proposed approach uses only limited measurements. Faults are located according to the impedances of their path using a feed forward neural networks (FFNN). Various practical situations in distribution systems, such as protective devices placed only at the substation, limited measurements available, various types of faults viz., three-phase, line (a, b, c) to ground, line to line (a-b, b-c, c-a) and line to line to ground (a-b-g, b-c-g, c-a-g) faults and a wide range of varying short circuit levels at substation, are considered for studies. A typical IEEE 34 bus practical distribution system with unbalanced loads and with three- and single- phase laterals and a 69 node test feeder with different configurations are considered for studies. The results presented show that the proposed approach of fault location gives close to accurate results in terms of the estimated fault location
Keywords :
IEEE standards; fault location; power distribution faults; power system analysis computing; radial basis function networks; IEEE 34 bus system; distribution automation system; fault location measurement; feed forward neural network; feeder; line to ground fault; line to line fault; protective device; radial basis probabilistic neural network; short circuit level; substation; three-phase fault; unbalanced distribution network; Artificial neural networks; Circuit faults; Circuit testing; Fault location; Feedforward neural networks; Feeds; Impedance; Neural networks; Substation protection; System testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power India Conference, 2006 IEEE
Conference_Location :
New Delhi
Print_ISBN :
0-7803-9525-5
Type :
conf
DOI :
10.1109/POWERI.2006.1632510
Filename :
1632510
Link To Document :
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