基于遗传算法的多机电力系统模糊稳定器设计

M. Dubey
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引用次数: 45

摘要

提出了用遗传算法设计多机电力系统模糊逻辑稳定器的方法。在提出的模糊专家系统中,选择发电机转速偏差和加速度作为模糊逻辑电力系统稳定器的输入信号。该方法采用遗传算法对模糊控制器的增益、隶属函数中心和参数进行了调整。将遗传算法应用于模糊电力系统稳定器的设计中,将使稳定器的智能化维度增加,大大减少了设计过程中的计算时间。将模糊逻辑电力系统稳定器最优参数的选择问题转化为优化问题,采用基于目标函数的时间误差平方积分(ISTSE)遗传算法求解。为了验证所提出的基于遗传的模糊逻辑电力系统稳定器的鲁棒性,对小扰动和三相故障下的多机系统进行了仿真研究。仿真结果表明,与常规调谐控制器相比,基于遗传算法的模糊逻辑电力系统稳定器具有优越性和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of Genetic Algorithm Based Fuzzy Logic Power System Stabilizers in Multimachine Power System
This paper presents the design of fuzzy logic power system stabilizers using genetic algorithms in multimachine power system. In the proposed fuzzy expert system, generator speed deviation and acceleration are chosen as input signals to fuzzy logic power system stabilizer. In this approach gains, centers of membership functions and the parameters of the fuzzy logic controllers have been tuned using genetic algorithm. Incorporation of GA in the design of fuzzy logic power system stabilizer will add an intelligent dimension to the stabilizer and significantly reduces computational time in the design process. The problem of selection of optimal parameters of fuzzy logic power system stabilizer is converted into an optimization problem and which is solved by genetic algorithm with the integral of squared time squared error (ISTSE) based objective function. To demonstrate the robustness of the proposed genetic based fuzzy logic power system stabilizer, simulation studies on multimachine system subjected to small perturbation and three-phase fault have been carried out. Simulation results show the superiority and robustness of GA based fuzzy logic power system stabilizer as compare to conventionally tuned controller.
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