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Distribution Network Fault Prediction Utilising Protection Relay Disturbance Recordings And Machine Learning

Authors :
Balouji, Ebrahim
Bäckström, Karl
Olsson, Viktor
Hovila, Petri
Niveri, Henry
Kulmala, Anna
Salo, Ari
Publication Year :
2023

Abstract

As society becomes increasingly reliant on electricity, the reliability requirements for electricity supply continue to rise. In response, transmission/distribution system operators (T/DSOs) must improve their networks and operational practices to reduce the number of interruptions and enhance their fault localization, isolation, and supply restoration processes to minimize fault duration. This paper proposes a machine learning based fault prediction method that aims to predict incipient faults, allowing T/DSOs to take action before the fault occurs and prevent customer outages.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2306.12724
Document Type :
Working Paper