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Artificial Neural Network Applications in Transmission Line Fault Diagnosis

Domain:

environment and energy

Record type:

paper
Creator:
ObiChiAbiDen
Publisher:
RSI
Host:
This study proposes an intelligent fault detection mechanism using artificial neural networks (ANNs) to detect faults on power system transmission lines. A prototype of Kaduna-to-Kano transmission line network was modeled in Simulink, and voltage and current data were extracted and trained using the Levenberg-Marquardt backpropagation algorithm. The results show that the ANN can detect both symmetrical and non-symmetrical faults, with validation plots and regression plots demonstrating its effectiveness. This technique is highly recommended for power system transmission line networks and can be extended to distribution networks.

Visit

doi.org

Languages

Gbagyi

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