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Real time experimental implementation of optimum energy management system in standalone Microgrid by using multi-layer ant colony optimization

机译:多层蚁群优化技术在独立微电网中优化能源管理系统的实时实验实现

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In this paper, an algorithm for energy management system (EMS) based on multi-layer ant colony optimization (EMS-MACO) is presented to find energy scheduling in Microgrid (MG). The aim of study is to figure out the optimum operation of micro-sources for decreasing the electricity production cost by hourly day-ahead and real time scheduling. The proposed algorithm is based on ant colony optimization (ACO) method and is able to analyze the technical and economic time dependent constraints. This algorithm attempts to meet the required load demand with minimum energy cost in a local energy market (LEM) structure. Performance of MACO is compared with modified conventional EMS (MCEMS) and particle swarm optimization (PSO) based EMS. Analysis of obtained results demonstrates that the system performance is improved also the energy cost is reduced about 20% and 5% by applying MACO in comparison with MCEMS and PSO, respectively. Furthermore, the plug and play capability in real time applications is investigated by using different scenarios and the system adequate performance is validated experimentally too. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文提出了一种基于多层蚁群优化(EMS-MACO)的能源管理系统(EMS)算法,用于在微电网(MG)中查找能源调度。研究的目的是通过提前一天进行小时调度和实时调度来找出微源的最佳运行方式,以降低电力生产成本。该算法基于蚁群优化(ACO)方法,能够分析技术和经济时间相关的约束。该算法试图在本地能源市场(LEM)结构中以最小的能源成本满足所需的负载需求。将MACO的性能与改进的常规EMS(MCEMS)和基于粒子群优化(PSO)的EMS进行了比较。对获得的结果的分析表明,与MCEMS和PSO相比,采用MACO分别可提高系统性能,并降低能源成本约20%和5%。此外,通过使用不同的场景来研究实时应用中的即插即用功能,并且还通过实验验证了系统的足够性能。 (C)2015 Elsevier Ltd.保留所有权利。

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