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Frequency Stabilization for Multi-area Thermal-Hydro Power System Using Genetic Algorithm-optimized Fuzzy Logic Controller in Deregulated Environment

机译:遗传算法优化模糊控制的多区域火电系统频率稳定控制

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This article develops a model of load frequency control for an interconnected two-area thermal-hydro power system under a deregulated environment. In this article, a fuzzy logic controller is optimized by a genetic algorithm in two steps. The first step of fuzzy logic controller optimization is for variable range optimization, and the second step is for the optimization of scaling and gain parameters. Further, the genetic algorithm-optimized fuzzy logic controller is compared against a conventional proportional-integral-derivative controller and a simple fuzzy logic controller. The proposed genetic algorithm-optimized fuzzy logic controller shows better dynamic response following a step-load change with combination of poolco and bilateral contracts in a deregulated environment. In this article, the effect of the governor dead band is also considered. In addition, performance of genetic algorithm-optimized fuzzy logic controller also has been examined for various step-load changes in different distribution unit demands and compared with the proportional-integral-derivative controller and simple fuzzy logic controller.
机译:本文开发了一种在管制放松的环境下,互连的两区域热电联产系统的负载频率控制模型。在本文中,通过遗传算法分两个步骤对模糊逻辑控制器进行了优化。模糊逻辑控制器优化的第一步用于可变范围优化,第二步用于缩放和增益参数的优化。此外,将遗传算法优化的模糊逻辑控制器与常规比例-积分-微分控制器和简单的模糊逻辑控制器进行了比较。提出的遗传算法优化的模糊逻辑控制器在不规则的环境中,随着poolco和双边合同的组合,随着阶跃负载变化显示出更好的动态响应。在本文中,还考虑了调速器死区的影响。此外,还针对不同配电单元需求中的各种阶跃负载变化,研究了遗传算法优化的模糊逻辑控制器的性能,并与比例积分微分控制器和简单的模糊逻辑控制器进行了比较。

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