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Stochastic, adaptive, and dynamic control of energy storage systems integrated with renewable energy sources for power loss minimization

机译:集成了可再生能源的储能系统的随机,自适应和动态控制,可最大程度地减少功率损耗

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In this study, the energy storage systems (ESS) integrated with renewable energy sources (RES), installed in a medium-voltage primary electrical distribution system, are controlled based on a proposed stochastic, adaptive, and dynamic approach to minimize the daily operation cost of system managed by the local distribution company (DISCO). A stochastic approach is applied in the operation problem to address the uncertainty of power of RESs. In addition, a model predictive control (MPC) technique is employed to deal with the variability of power of RESs. The daily operation cost of distribution system includes the hourly energy loss cost of electrical feeder, the hourly operation cost of ESSs, and the hourly switching cost of ESSs. The numerical study demonstrates a remarkable potential for reducing the operation cost of system by optimal control of ESSs and application of stochastic MPC. In addition, it is proven that applying MPC in the problem results in better outcomes. Moreover, it is shown that MPC increases the robustness of optimization procedure with respect to the prediction errors, due to dynamic and adaptability characteristics of MPC. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在这项研究中,基于建议的随机,自适应和动态方法来控制安装在中压一次配电系统中的与可再生能源(RES)集成的储能系统(ESS),以最大程度地减少日常运营成本由本地分销公司(DISCO)管理的系统。在操作问题中采用了一种随机方法来解决RES功率的不确定性。另外,采用模型预测控制(MPC)技术来处理RES功率的可变性。配电系统的日常运行成本包括电馈线的每小时能量损失成本,ESS的每小时运行成本以及ESS的每小时切换成本。数值研究表明,通过对ESS的最佳控制和随机MPC的应用,可以降低系统的运行成本。此外,事实证明,在问题中应用MPC可以带来更好的结果。而且,由于MPC的动态和适应性特征,表明MPC相对于预测误差增加了优化过程的鲁棒性。 (C)2017 Elsevier Ltd.保留所有权利。

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