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An Efficient Genetic Algorithm Based Demand Side Management Scheme for Smart Grid

机译:基于智能电网的高效遗传算法基于需求侧管理方案

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In this paper, we propose a novel strategy for a Demand Side Management (DSM) in a Smart Grid (SG). In this strategy, three types of loads are considered, i.e., residential load, commercial load and industrial load. The larger number of appliances of different power rating for each type of load is considered in this work. The focus of this work is to minimize the Peak to Average Ratio (PAR) to increase the efficiency of SG, by increasing the utilization of spinning reserves. On the other hand, our aim is to minimize the electricity consumption cost. Tackling the large number of appliances in an SG is a challenging task, because it increases the complexity of the problem. However, in literature the focus is on small number of appliance. In this work, the load scheduling problem is mathematically formulated and solved by using genetic algorithm. The simulation results show that the propose algorithm reduces the cost, while reducing the peak load demand of the SG.
机译:在本文中,我们提出了一种在智能电网(SG)中的需求侧管理(DSM)的新策略。在该策略中,考虑了三种类型的负载,即住宅负载,商业负荷和工业负荷。在这项工作中考虑了每种负载的不同功率额定值的更多电器。这项工作的重点是通过提高纺丝储备的利用率来使峰值降低到平均比率(PAR)以提高SG的效率。另一方面,我们的目标是最大限度地减少电力消耗成本。解决SG中的大量设备是一个具有挑战性的任务,因为它增加了问题的复杂性。然而,在文献中,重点是少量的设备。在这项工作中,通过使用遗传算法在数学上配制和解决了负载调度问题。仿真结果表明,该提议算法降低了成本,同时降低了SG的峰值负荷需求。

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