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      Robust Energy Management for Microgrids With High-Penetration Renewables

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          Abstract

          Due to its reduced communication overhead and robustness to failures, distributed energy management is of paramount importance in smart grids, especially in microgrids, which feature distributed generation (DG) and distributed storage (DS). Distributed economic dispatch for a microgrid with high renewable energy penetration and demand-side management operating in grid-connected mode is considered in this paper. To address the intrinsically stochastic availability of renewable energy sources (RES), a novel power scheduling approach is introduced. The approach involves the actual renewable energy as well as the energy traded with the main grid, so that the supply-demand balance is maintained. The optimal scheduling strategy minimizes the microgrid net cost, which includes DG and DS costs, utility of dispatchable loads, and worst-case transaction cost stemming from the uncertainty in RES. Leveraging the dual decomposition, the optimization problem formulated is solved in a distributed fashion by the local controllers of DG, DS, and dispatchable loads. Numerical results are reported to corroborate the effectiveness of the novel approach.

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          Autonomous Demand-Side Management Based on Game-Theoretic Energy Consumption Scheduling for the Future Smart Grid

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            An Economic Dispatch Model Incorporating Wind Power

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              Energy-Efficient Buildings Facilitated by Microgrid

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                Author and article information

                Journal
                19 July 2012
                2013-05-26
                Article
                10.1109/TSTE.2013.2255135
                1207.4831
                5125032e-9286-4283-aedd-26bf1ae0651b

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
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                Short versions were accepted by the IEEE Transactions on Sustainable Energy, and presented in part at the IEEE SmartGridComm 2012
                math.OC cs.SY

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