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Automatic generation control of two-area electrical power systems via optimal fuzzy classical controller

机译:基于最优模糊经典控制器的两区电力系统自动发电控制

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摘要

The interconnected large-scale power systems are liable to performance degradation under the presence of sudden small load demands, parameter ambiguity and structural changes. Due to this, to supply reliable electric power with good quality, robust and intelligent control strategies are extremely requisite in automatic generation control (AGC) of power systems. Hence, this paper presents an output scaling factor (SF) based fuzzy classical controller to enrich AGC conduct of two-area electrical power systems. An implementation of imperialist competitive algorithm (ICA) is made to optimize the output SF of fuzzy proportional integral (FPI) controller employing integral of squared error criterion. Initially the study is conducted on a well accepted two-area non-reheat thermal system with and without considering the appropriate generation rate constraint (GRC). The advantage of the proposed controller is illustrated by comparing the results with fuzzy controller and bacterial foraging optimization algorithm (BFOA)/genetic algorithm (GA)/particle swarm optimization (PSO)/hybrid BFOA-PSO algorithm/firefly algorithm (FA)/hybrid FA-pattern search (hFA-PS) optimized PI/PID controller prevalent in the literature. The proposed approach is further extended to a newly emerged two-area reheat thermal-PV system. The superiority of the method is depicted by contrasting the results of GA/FA tuned PI controller. The proposed control approach is also implemented on a multi-unit multi-source hydrothermal power system and its advantage is established by Correlating its results with GA/hFA-PS tuned PI, hFA-PS/grey wolf optimization (GWO) tuned PID and BFOA tuned FPI controllers. Finally, a sensitivity analysis is performed to demonstrate the robustness of the proposed method to broad changes in the system parameters and size and/or location of step load perturbation. (C) 2018 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:在突然的小负载需求,参数歧义和结构变化的情况下,互连的大型电力系统容易导致性能下降。因此,要以高质量提供可靠的电力,在电力系统的自动发电控制(AGC)中,鲁棒和智能的控制策略是极其必要的。因此,本文提出了一种基于输出比例因子(SF)的模糊经典控制器,以丰富两区域电力系统的AGC行为。提出了一种帝国主义竞争算法(ICA),利用平方误差准则积分对模糊比例积分(FPI)控制器的输出SF进行优化。最初,该研究是在一个公认的两区域非再热热系统上进行的,有或没有考虑适当的发电率约束(GRC)。通过将结果与模糊控制器和细菌觅食优化算法(BFOA)/遗传算法(GA)/粒子群优化(PSO)/混合BFOA-PSO算法/萤火虫算法(FA)/混合文献中普遍采用FA模式搜索(hFA-PS)优化的PI / PID控制器。拟议的方法进一步扩展到一个新出现的两区域再热热PV系统。通过对比GA / FA调整的PI控制器的结果来描述该方法的优越性。所提出的控制方法也可在多单元多源热电系统上实施,其优势是通过将其结果与GA / hFA-PS调整的PI,hFA-PS /灰狼优化(GWO)调整的PID和BFOA相关联来建立的调整好的FPI控制器。最后,进行了灵敏度分析,以证明所提出方法对系统参数以及阶跃负载扰动的大小和/或位置的广泛变化的鲁棒性。 (C)2018富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

著录项

  • 来源
    《Journal of the Franklin Institute》 |2018年第5期|2662-2688|共27页
  • 作者

    Arya Yogendra;

  • 作者单位

    Maharaja Surajmal Inst Technol, Dept Elect & Elect Engn, New Delhi, India;

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  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 02:57:37

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