DocumentCode :
1795693
Title :
A novel grid load management technique using electric water heaters and Q-learning
Author :
Al-jabery, Khalid ; Wunsch, Donald C. ; Jinjun Xiong ; Yiyu Shi
Author_Institution :
ECE Dept., Missouri Univ. Sci. &Technol., Rolla, MO, USA
fYear :
2014
fDate :
3-6 Nov. 2014
Firstpage :
776
Lastpage :
781
Abstract :
This paper describes a novel technique for controlling demand-side management (DSM) by optimizing the power consumed by Domestic Electric Water Heaters (DEWH) while maintaining customer satisfaction. The system has 18 states based on three factors: instantaneous grid load, water consumption, and the temperature of the water supplied. The current state of the system is defined based on its fuzzy membership for each factor. The resulting model represents a Semi-Markov decision process (SMDP) with two possible actions, “On” and “Off.” Rewards are assigned for each action-state pairs proportionally to the fuzzy membership of the system in the new state. A simulation study was conducted to compare the proposed method with three previous approaches. The proposed method demonstrated better performance in reducing the overall grid power demand and flattening its peaks. Furthermore, it provides better rate of customers´ satisfaction than the uncontrolled operation.
Keywords :
Markov processes; customer satisfaction; demand side management; domestic appliances; electric heating; learning (artificial intelligence); power consumption; power engineering computing; power grids; DEWH; DSM; Q-learning; SMDP; customer satisfaction; demand side management; domestic electric water heater; fuzzy membership; grid load management technique; power consumption; semiMarkov decision process; water consumption; water supply temperature; Load modeling; Mathematical model; Power demand; Pragmatics; Q-factor; Training; Water heating; Electric water heaters; Markov decision process; Q-learning; Reinforcement learning; grid demand;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Smart Grid Communications (SmartGridComm), 2014 IEEE International Conference on
Conference_Location :
Venice
Type :
conf
DOI :
10.1109/SmartGridComm.2014.7007742
Filename :
7007742
Link To Document :
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