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首页> 外文期刊>International journal of power electronics >An adaptive power system management with DG placement and cluster-based load forecasting by CS,K-means and ANN algorithms
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An adaptive power system management with DG placement and cluster-based load forecasting by CS,K-means and ANN algorithms

机译:具有DG放置和基于群集的负载预测的自适应电力系统管理,CS,K均值和ANN算法

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摘要

Power system management plays a big task of grid utilisation in the researcher's world with the maintenance of power imbalance by proper power distribution with load forecasting in the network. For better grid utilisation, a distributed generation (DG) and load forecasting system must be integrated to get the reduced power loss. Concern to that placing of DGs is very important for maintaining the good voltage profile. Hence, the paper proposed a novel system for complete power system management with proper grid utilisation based on DG placement and load forecasting using cuckoo search (CS) and K-mean with artificial neural network (ANN). The proposed system placed the DG in a most appropriate place by optimisation subsequently predict the load by utilising cluster-based algorithm thereby reducing the power loss and maintain good voltage profile. The proposed system is tested in standard IEEE-30 distributed bus system suggested that the performances analysed based on power qualities as well as load forecasting provides better performance on power qualities with minimum power loss of 0.035 kW and the good total voltage profile of 312 kv.
机译:电力系统管理在研究人员的世界中,通过在网络中的负载预测中通过适当的功率分布维护功率不平衡,在研究人员的世界中发挥了重要任务。为了更好的电网利用,必须集成分布式发电(DG)和负载预测系统以获得降低的功率损耗。关注DGS的放置对于维护良好的电压曲线非常重要。因此,本文提出了一种新型系统,用于基于DG放置和使用杜鹃搜索(CS)和与人工神经网络(ANN)的K型k均值的PRIF电力利用的完整电力系统管理系统。通过优化将DG放置DG,随后通过利用基于簇的算法预测负载,从而降低功率损耗并保持良好的电压分布。在标准IEEE-30分布式总线系统中测试了所提出的系统,表明基于功率质量和负载预测分析的性能在功率质量上提供了更好的功率质量,最小功率损耗为0.035 kW,良好的总电压曲线为312 kV。

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