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Stochastic model predictive control for economic/environmental operation management of microgrids: An experimental case study

机译:微电网经济/环境运行管理的随机模型预测控制:一个实验案例研究

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Microgrids are subsystems of the distribution grid which comprises generation capacities, storage devices and flexible loads, operating as a single controllable system either connected or isolated from the utility grid. In this work, microgrid management system is developed in a stochastic framework. It is seen as a constraint-based system that employs forecasts and stochastic techniques to manage microgrid operations. Uncertainties due to fluctuating demand and generation from-renewable energy sources are taken into account and a two-stage stochastic programming approach is applied to efficiently optimize microgrid operations while satisfying a time-varying request and operation constraints. At the first stage, before the realizations of the random variables are known, a decision on the microgrid operations has to be made. At the second stage, after random variables outcomes become known, correction actions must be taken, which have a cost. The proposed approach aims at minimizing the expected cost of correction actions. Mathematically, the stochastic optimization problem is stated as a mixed-integer linear programming problem, which is solved in an efficient way by using commercial solvers. The stochastic problem is incorporated in a model predictive control scheme to further compensate the uncertainty through the feedback mechanism. A case study of a microgrid is employed to assess the performance of the on-line optimization-based control strategy and the simulation results are discussed. The method is applied to an experimental microgrid: experimental results show the feasibility and the effectiveness of the proposed approach. (C) 2016 Elsevier Ltd. All rights reserved.
机译:微电网是配电网的子系统,包括发电能力,存储设备和灵活的负载,它们作为与公用电网连接或隔离的单个可控系统运行。在这项工作中,微电网管理系统是在随机框架中开发的。它被视为基于约束的系统,该系统采用了预测和随机技术来管理微电网运营。考虑了由于需求波动和来自可再生能源产生的不确定性,并且采用了两阶段随机规划方法来有效优化微电网运行,同时满足随时间变化的要求和运行约束。在第一阶段,在知道随机变量的实现之前,必须对微电网操作做出决定。在第二阶段,在知道随机变量结果之后,必须采取纠正措施,这会产生成本。提议的方法旨在最小化纠正措施的预期成本。在数学上,随机优化问题表示为混合整数线性规划问题,可通过使用商用求解器以有效方式对其进行求解。随机问题被纳入模型预测控制方案中,以通过反馈机制进一步补偿不确定性。以微电网为例,评估了基于在线优化的控制策略的性能,并讨论了仿真结果。该方法应用于实验微电网:实验结果表明了该方法的可行性和有效性。 (C)2016 Elsevier Ltd.保留所有权利。

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