DocumentCode :
676478
Title :
Optimization of microgrid with demand side management using Genetic Algorithm
Author :
Jayadev, V. ; Swarup, K. Shanti
Author_Institution :
Indian Inst. of Technol., Madras, Chennai, India
fYear :
2013
fDate :
16-17 Oct. 2013
Firstpage :
1
Lastpage :
6
Abstract :
In a smart grid environment, economic operation means not only to economic scheduling of generation, but also to scheduling the load. In a Microgrid (MG), which comprises of intermittent Distributed Generators (DGs) (eg. solar and wind energy sources), the need of Demand Side Management (DSM)/ Demand Response (DR) becomes significant. The key point in DSM is to shift the load to some other point in time, this causes inconvenience to the customer and therefore it should be minimized. Minimizing the cost of generation and also minimizing the inconvenience caused due to shifting of loads is a multiobjective optimization problem. In this work the authors consider an industrial/ commercial MG with one solar source, two diesel generators and one battery, with the assumption that the utility grid uses dynamic pricing. The objective function contains discontinuous functions which will be difficult to solve using conventional optimization techniques and hence a Genetic Algorithm (GA) based solution is proposed. The simulation results show that there is savings for the customer with DSM compared to the case without DSM.
Keywords :
demand side management; distributed power generation; genetic algorithms; power generation economics; power generation scheduling; pricing; smart power grids; DR; DSM; GA based solution; battery; demand response; demand side management; diesel generators; discontinuous functions; dynamic pricing; genetic algorithm; industrial-commercial MG; intermittent distributed generators; load scheduling; microgrid optimization; multiobjective optimization problem; objective function; power generation cost minimization; power generation economic scheduling; smart grid environment; solar source; utility grid; Demand Side Management; Distributed Generation; Genetic Algorithm; Microgrid; Optimization;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Power in Unity: a Whole System Approach, IET Conference on
Conference_Location :
London
Electronic_ISBN :
978-1-84919-792-2
Type :
conf
DOI :
10.1049/ic.2013.0124
Filename :
6718595
Link To Document :
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