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Optimal operation management of a microgrid based on MOPSO and Differential Evolution algorithms

机译:基于MOPSO和差分演化算法的微电网的最优运行管理

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Local aggregation of Distributed Energy Resources (DERs), storage devices, controllable and uncontrollable loads is known as Microgrid. Microgrid operation management in order to reduce both cost and emission simultaneously is a very challenging task considering smart utilization of available energy resources in a highly constrained environment along with the conflicting nature of objectives. This paper aims to optimize the operation of an interconnected microgrid which comprises a variety of DERs and storage devices in order to minimize both cost and emission resulted from supplying local demands. Furthermore we will try to achieve an intelligent schedule to charge and discharge storage devices that provides the opportunity to benefit from market price fluctuations. The presented optimization framework is based on Multiobjective Particle Swarm Optimization (MOPSO) approach which adopts Differential Evolution (DE) algorithm to improve the search capability of the developed methodology. Finally results from an illustrative case study are provided and analyzed.
机译:分布式能源资源(DER),存储设备,可控和无法控制负载的本地聚合称为MicroGrid。微电网运行管理,以便同时降低成本和发射,是考虑在高度约束环境中的可用能源资源的智能利用以及目标的矛盾性质的智能利用,这是一个非常具有挑战性的任务。本文旨在优化互连的微电网的操作,该微电网包括各种DER和存储装置,以便最小化由于提供局部需求而导致的成本和排放。此外,我们将尝试实现智能计划,以充电和放电设备,以便提供从市场价格波动中受益的机会。所提出的优化框架是基于多目标粒子群优化(MOPSO)方法,它采用差分演进(DE)算法来改善开发方法的搜索能力。最后提供并分析了说明性案例研究的结果。

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