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Optimal energy management for stand-alone microgrids based on multi-period imperialist competition algorithm considering uncertainties: experimental validation

机译:基于不确定性的多时期帝国竞争算法的独立微电网最优能源管理:实验验证

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摘要

Microgrid (MG) constitutes non-dispatchable resources and responsive loads, which can serve as a basic tool to reach desired objectives while distributing electricity more effectively, economically, and securely. However, high penetration of distributed generations into the grid leads to fundamental and critical challenges to ensure a reliable power systemoperation. This paper presents a general formulation of optimum operation strategy with the objective of cost optimization plan and demand response regulation. MG energy management problem can be formulated as an optimization problem in order to minimize the cost-related to generation resources and responsive loads. An expert heuristic approach based on multi-period imperialist competition algorithm is applied to implement an energy management system for optimization purposes. A comparison is carried out between the proposed algorithm and classical techniques, including particle swarm optimization and a modified conventional energy management system algorithms. An artificial neural network combined with Markov-chain approach is used to predict non-dispatchable power generationand load demand under uncertainty conditions. The proposed algorithm is evaluated experimentally on an MG testbed, and the obtained results demonstrate the efficiency of the proposed algorithm to minimize the total generation cost with a fast calculation time, which makes it useful for real-time applications. Copyright © 2015 John Wiley & Sons, Ltd.
机译:微电网(MG)构成了不可分配的资源和响应负载,可以用作实现所需目标的基本工具,同时更有效,经济和安全地分配电力。然而,分布式发电的高渗透到电网导致基本和关键挑战,以确保可靠的电力系统运行。本文提出了以成本优化计划和需求响应调节为目标的最优运营策略的一般表述。 MG能源管理问题可以表述为优化问题,以最大程度地减少与发电资源和响应负荷相关的成本。基于多时期帝国主义竞争算法的专家启发式方法被用于实现用于优化目的的能量管理系统。在提出的算法和经典技术之间进行了比较,包括粒子群优化和改进的常规能源管理系统算法。结合马尔可夫链法的人工神经网络用于预测不确定条件下不可调度的发电量和负荷需求。将该算法在MG测试平台上进行了实验评估,所得结果证明了该算法在快速计算时间下将总发电成本降至最低的效率,这对于实时应用很有用。版权所有©2015 John Wiley&Sons,Ltd.

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