Artificial intelligence based hybridization for economic power dispatch

Kothuri Rama Krishna , Rajesh Kumar Samala
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Abstract

Revenue loss is a major issue for any country. Conversion of this loss into utilization would prove to be a huge benefit to the country. In view of this fact, the economic load dispatch problem draws much attention. Substantial reduction in fuel cost could be obtained by the application of modern heuristic optimization techniques for scheduling of the committed generator units. In this study, two cases are taken named three-unit system and six-unit system. The fuel cost for both systems compared using conventional lambda-iteration method and PSO method. These calculations are done for without transmission loss as well as with transmission losses. In the end, the fuel cost for both methods compared to analyze the better one from them. All the analyses are executed in MATLAB environment.

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基于人工智能的混合动力经济调度
收入损失对任何国家来说都是一个重大问题。将这种损失转化为利用将证明对该国是一个巨大的好处。有鉴于此,经济负荷调度问题备受关注。通过应用现代启发式优化技术对承诺的发电机组进行调度,可以大幅降低燃料成本。在本研究中,选取了两个案例,分别命名为三单元系统和六单元系统。使用传统的lambda迭代方法和PSO方法比较了两个系统的燃料成本。这些计算是在没有传输损耗和有传输损耗的情况下进行的。最后,对两种方法的燃料成本进行了比较,从中分析出更好的方法。所有的分析都是在MATLAB环境下进行的。
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