DocumentCode :
804130
Title :
Modeling Weather-Related Failures of Overhead Distribution Lines
Author :
Zhou, Yujia ; Pahwa, Anil ; Yang, Shie-Shien
Author_Institution :
KEMA T&D Consulting, Raleigh, NC
Volume :
21
Issue :
4
fYear :
2006
Firstpage :
1683
Lastpage :
1690
Abstract :
Weather is one of the major factors affecting the reliability of power distribution systems. An effective method to model weather´s impact on overhead distribution lines´ failure rates will enable utilities to compare their systems´ reliabilities under different weather conditions. This will allow them to make the right decisions to obtain the best operation and maintenance plan to reduce impacts of weather on reliabilities. Two methods to model overhead distribution lines´ failure rates are presented in this paper. The first is based on a Poisson regression model, and it captures the counting nature of failure events on overhead distribution lines. The second is a Bayesian network model, which uses conditional probabilities of failures given different weather states. Both methods are used to predict the yearly weather-related failure events on overhead lines. This is followed by a Monte Carlo analysis to determine prediction bounds. The results obtained by these models are compared to evaluate their salient features
Keywords :
Bayes methods; Monte Carlo methods; environmental factors; maintenance engineering; power distribution reliability; power overhead lines; Bayesian network model; Monte Carlo analysis; Poisson regression model; conditional probability; maintenance plan; overhead distribution lines; power distribution reliability; weather-related failures; Bayesian methods; Maintenance; Monte Carlo methods; Network topology; Power distribution; Power distribution lines; Power system modeling; Power system reliability; Predictive models; Weather forecasting; Bayesian networks; power distribution lines; power distribution meteorological factors; power distribution reliability; regression analysis;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2006.881131
Filename :
1717571
Link To Document :
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