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MGWOSCACSA: A Novel Hybrid Algorithm for Energy Management of Microgrid Systems

机译:Mgwoscacsa:一种新型微电网系统的混合算法

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Optimal scheduling of distributed energy resources (DER) in a microgrid system is a crucial step to accord an economic check in the planning and operation of the system. Among the many DERs, involvement of renewable energy sources (RES) also plays an important role in diminishing the release of harmful pollutants to the atmosphere from fossil-fuelled generators. This paper involves a novel hybrid method of recently developed three strong optimization methods viz. grey wolf optimizer (GWO), sine cosine algorithm (SCA) and crow search algorithm (CSA) to minimize the overall cost of a grid-connected microgrid system. The results were then compared to that of GWO, MGWO and those mentioned in literature. Numerical and pictorial results assert that proposed MGWOSCACSA outperformed all the optimization techniques in yielding consistent and superior quality results.
机译:微电网系统中分布式能源(Der)的最佳调度是在系统的规划和运行中遵守经济检查的重要步骤。 在许多小孩中,可再生能源(RES)的参与也在减少从化石燃料发电机释放有害污染物的释放方面发挥着重要作用。 本文涉及最近开发的三种强大优化方法的新型混合方法。 灰狼优化器(GWO),正弦余弦算法(SCA)和乌鸦搜索算法(CSA),以最大限度地减少网格连接的微电网系统的总成本。 然后将结果与文献中提到的GWO,MgWO和那些相比。 数值和图案结果断言,所提出的Mgwoscacsa优于所有优化技术,屈服于始终如一和优质的结果。

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