Dynamic constrained coalition formation among electric vehicles

Author:

de O Ramos Gabriel,Burguillo Juan C,Bazzan Ana LC

Abstract

Abstract Background The use of electric vehicles (EVs) and vehicle-to-grid (V2G) technologies have been advocated as an efficient way to reduce the intermittency of renewable energy sources in smart grids. However, operating on V2G sessions in a cost-effective way is not a trivial task for EVs. The formation of coalitions among EVs has been proposed to tackle this problem. Methods In this paper we introduce Dynamic Constrained Coalition Formation (DCCF), which is a distributed heuristic-based method for constrained coalition structure generation (CSG) in dynamic environments. In our approach, coalitions are formed observing constraints imposed by the grid. To this end, EV agents negotiate the formation of feasible coalitions among themselves. Results Based on experiments, we show that DCCF is efficient to provide good solutions in a fast way. DCCF provides solutions whose quality approaches 98% of the optimum. In dynamically changing scenarios, DCCF also shows good results, keeping the agents payoff stable along time. Conclusions Essentially, DCCF’s main advantage over traditional CSG algorithms is that its computational effort is very lower. On the other hand, unlike traditional algorithms, DCCF is suitable only for constraint-based problems.

Publisher

Springer Science and Business Media LLC

Subject

General Computer Science

Reference22 articles.

1. US Department of Energy: Grid 2030: A national vision for electricity’s second 100 years. 2003.http://energy.gov/sites/prod/files/oeprod/DocumentsandMedia/Electric_Vision_Document.pdf , accessed 09 September 2011.

2. Kempton W, Tomić J: Vehicle-to-grid power implementation: from stabilizing the grid to supporting large-scale renewable energy. J Power Sources 2005, 144(1):280–294. 10.1016/j.jpowsour.2004.12.022

3. Pudjianto D, Ramsay C, Strbac G: Virtual power plant and system integration of distributed energy resources. Renewable Power Generation. IET 2007, 1(1):10–16.

4. Chalkiadakis G, Robu V, Kota R, Rogers A, Jennings NR: Cooperatives of distributed energy resources for efficient virtual power plants. In Proceedings of the Tenth International Conference on Autonomous Agents and Multiagent Systems (AAMAS’11). Taipei, 2–6 May 2011; 2011:787–794.

5. Kamboj S, Kempton W, Decker KS: Deploying power grid-integrated electric vehicles as a multi-agent system. In The Tenth International Conference on Autonomous Agents and Multiagent Systems (AAMAS’11). Taipei, Taiwan, 2–6 May 2011; 2011:13–20.

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