DocumentCode :
3469921
Title :
Short-term probabilistic transmission congestion forecasting
Author :
Min, Liang ; Lee, Stephen T. ; Zhang, Pei ; Rose, Virgil ; Cole, James
Author_Institution :
Electr. Power Res. Inst., Palo Alto, CA
fYear :
2008
fDate :
6-9 April 2008
Firstpage :
764
Lastpage :
770
Abstract :
This paper introduces a probabilistic method for short-term transmission congestion forecasting, which is recently developed by EPRI. The proposed method applies the sequential Monte Carlo simulation (MCS) in a probabilistic load flow as the conceptual framework, adds all the significant uncertainties and their probability distributions to be modeled, develops the models, and most importantly specifies how to accurately model the key input assumptions in order to derive valid confidence levels of the forecasted congestion variables. The developed probabilistic method is successfully applied to the four-area WECC equivalent system. Focus is on the confidence levels of making such forecasts, so that a window of forecast-ability is defined, beyond which any forecast would be considered to contain little actionable information. Within the window of forecast-ability, the probabilistic forecasts of congestion would provide confidence limits and information for ranking the potential benefits of alleviating congestion at the various transmission bottlenecks.
Keywords :
Monte Carlo methods; load forecasting; power transmission planning; confidence levels; forecasted congestion variables; probabilistic load flow; probabilistic method; sequential Monte Carlo simulation; short-term transmission congestion forecasting; Artificial neural networks; Costs; Economic forecasting; Load flow; Load forecasting; Power system simulation; Predictive models; Probability distribution; Reliability; Uncertainty; Congestion forecasting; Monte Carlo Simulation (MCS); probabilistic load flow; probability distribution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electric Utility Deregulation and Restructuring and Power Technologies, 2008. DRPT 2008. Third International Conference on
Conference_Location :
Nanjuing
Print_ISBN :
978-7-900714-13-8
Electronic_ISBN :
978-7-900714-13-8
Type :
conf
DOI :
10.1109/DRPT.2008.4523508
Filename :
4523508
Link To Document :
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