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A Novel Objective Function and Algorithm for Optimal PSS Parameter Design in a Multi-Machine Power System

机译:多机电力系统最优PSS参数设计的新型目标函数和算法

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This paper proposes a novel objective function and algorithm to obtain a set of optimal power system stabilizer (PSS) parameters that include a feedback signal of a remote machine and local and remote input signal ratios for each machine in a multi-machine power system under various operating conditions. A novel function called the damping scale is proposed and formulated as an objective function to increase system damping after the system undergoes a disturbance. Three existing objective functions of the damping factor, damping ratio, and a combination of the damping factor and damping ratio were analyzed and compared with the proposed objective function. A novel algorithm called gradual self-tuning hybrid differential evolution (GSTHDE) was developed for rapid and efficient searching of an optimal set of PSS parameters. GSTHDE uses the gradual search concept on STHDE to enhance the probability of searching for an optimal solution. Eigenvalue analysis and nonlinear time domain simulation results demonstrated the effectiveness of the proposed objective function and algorithm.
机译:本文提出了一种新颖的目标函数和算法,以获取一组最佳电力系统稳定器(PSS)参数,该参数包括远程机器的反馈信号以及多机电力系统在各种情况下每台机器的本地和远程输入信号比运行条件。提出了一种新的函数,称为阻尼标度,并将其表述为目标函数,以在系统受到干扰后增加系统的阻尼。分析了阻尼系数,阻尼比以及阻尼系数和阻尼比的三个现有目标函数,并将其与提出的目标函数进行了比较。为了快速有效地搜索最优的PSS参数集,开发了一种称为渐进式自校正混合差分演化(GSTHDE)的新颖算法。 GSTHDE在STHDE上使用渐进式搜索概念,以提高搜索最佳解决方案的可能性。特征值分析和非线性时域仿真结果证明了所提目标函数和算法的有效性。

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