DocumentCode :
68972
Title :
Optimal Scheduling of Demand Response Events for Electric Utilities
Author :
Weiwei Chen ; Xing Wang ; Petersen, Jc ; Tyagi, Rajesh ; Black, J.
Author_Institution :
Manage. Sci. Lab., Gen. Electr. Global Res., Niskayuna, NY, USA
Volume :
4
Issue :
4
fYear :
2013
fDate :
Dec. 2013
Firstpage :
2309
Lastpage :
2319
Abstract :
Electric utilities have been investigating methods to reduce peak power demand. Demand response (DR) is one such method which intends to reduce peak electricity demand. DR programs typically have limits on the number and timing of events that may be triggered for a selected group of customers. This paper presents a methodology for optimizing the scheduling of DR events for various DR programs. The proposed optimization mechanism establishes a policy that triggers DR events according to the criteria that govern the cost to the utility and based on probability distributions of exogenous information that is accessible to utilities a priori, for decision making. The policy determines a dynamic threshold for triggering events that optimizes the expected savings over the planning horizon. Case studies using real utility data show that our solutions are better than current industrial practices, and close to ex-post optimality.
Keywords :
decision making; demand side management; dynamic programming; power generation scheduling; probability; smart power grids; DR event scheduling; DR programs; decision making; demand response events; dynamic programming; dynamic threshold; electric utilities; event number; event timing; expected savings; optimal scheduling; optimization mechanism; peak power demand reduction; planning horizon; probability distributions; smart grid; Dynamic programming; Electricity; Load management; Optimal scheduling; Probability distribution; Temperature distribution; Weather forecasting; Demand response; dynamic programming; option valuation; smart grid;
fLanguage :
English
Journal_Title :
Smart Grid, IEEE Transactions on
Publisher :
ieee
ISSN :
1949-3053
Type :
jour
DOI :
10.1109/TSG.2013.2269540
Filename :
6574273
Link To Document :
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