电力系统稳定器的实编码遗传算法设计

A. Ahmad, A. Abdelqader
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引用次数: 10

摘要

小信号稳定性是研究电力系统动态性能的一个关键因素。在稳定性分析中,要考虑的主要问题之一是电力系统易受干扰而产生的转子低频振荡。如果没有提供足够的阻尼,特别是在系统中使用AVR时,这些振荡可能会持续并增加幅度,从而导致系统分离。为了增强系统阻尼,发电机组安装了电力系统稳定器(PSS)。传统的PSS控制器广泛应用于工业中,以抑制由于干扰而产生的低频惯性振荡。这种稳定器的设计包括找到产生可达到的阻尼响应的PSS参数的最佳设置。已经提出了几种设计方法和技术(即顺序PSS设计,Ha>;优化技术等)多年来。提出了一种基于遗传算法的鲁棒PSS优化设计方法。该方法将阻尼因子(σ)和阻尼比()的优化与基于速度偏差的性能指标(IAE)优化并行,以获得尽可能好的时域结果(最小沉降时间、最小伺服器等)。这里使用的是著名的单机无限总线系统。对线性化后的系统进行了仿真。研究了带PSS和不带PSS时系统的速度响应。结果表明,在系统扰动时,采用PSS的系统响应保持稳定,与传统方法相比,该方法取得了令人鼓舞的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Power system stabilizer design using real-coded genetic algorithm
Small-signal stability is a key element in the studies of dynamic performance of electric power systems. One of the main considerations in stability analysis is the low-frequency oscillations of rotor due to disturbances of which the power system is susceptible to. These oscillations may sustain and grow in magnitude to cause system separation if adequate damping is not provided, especially during using an AVR in the system. To enhance system damping, the generating unit is equipped with a power system stabilizer (PSS). Conventional PSS controllers are widely utilized in industry to damp the low-frequency inertial oscillations experienced due to disturbances. The design of such stabilizer encompasses finding the best settings of PSS parameters which yield the attainable damping response. Several design approaches and techniques have been proposed (i.e. sequential PSS design, Ha>; optimization technique, etc.) over the years. A novel genetic-algorithm (GA) based optimization approach to design a robust PSS is presented in this paper. This proposed approach employs optimization of damping factor (σ) and damping ratio () in parallel with speed deviation based performance index (IAE) optimization, to obtain the best possible time-domain results (minimum settling time, sserror, etc.). The well-known single-machine infinite bus system is used here. Simulation of the linearized system is presented. The system speed response is investigated with and without PSS. Their results are compared and show that the response of the system with PSS sustains its stability during system upsets, which means that the proposed method gives encouraging results compared with traditional methods.
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