电力系统稳定器线性变参数建模与控制器综合框架

Gopi Krishna Allaboyena, Muhittin Yilmaz
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引用次数: 0

摘要

以发电机转动惯量项为研究对象,研究了具有同步发电机转子振荡的单机无限母线电力系统的线性变参数稳定器建模和控制器综合框架。对不确定电力系统稳定器的波动分量进行了动力学分析,并将其建立为线性参数变化模型,可测参数为发电机转子惯性项,代表参数不确定性和相应的系统全局不确定性。利用相应的线性变参数电力系统稳定器模型综合各自的控制器,既能稳定实际的电力系统稳定器,又能在发电机惯性波动的同一凸包下,对所有系统动态都能获得优异的暂态和稳态响应。控制器综合框架采用相应的线性分数变换表示来实现时变电力系统的鲁棒性能,即对零点的完美跟踪或对扰动的完美抑制。线性参数变化的电力系统稳定器数值模型分析和控制器综合结果清楚地表明,所提出的框架在动态参数变化下具有良好的发电机振荡幅度和持续时间结果。
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 Linear Parameter Varying Modeling and Controller Synthesis Framework
This study investigates linear parameter varying power system stabilizer modeling and controller synthesis frameworks in single machine infinite bus power systems with synchronous generator rotor oscillations by focusing on the generator moment of inertia term. The uncertain power system stabilizer dynamics is analyzed for its fluctuating components and is formulated as a linear parameter varying model, with the measurable parameter being the generator rotor inertia term, representing the parametric and corresponding global system uncertainty. The corresponding linear parameter varying power system stabilizer plant model is utilized to synthesize respective controllers both to stabilize the actual power system stabilizer and to achieve superior transient and steady state responses for all system dynamics in the same convex hull of the generator inertia fluctuations. The controller synthesis framework used the corresponding linear fractional transformation representation to achieve the robust performance of the time-varying power system, i.e., a perfect tracking to a zero reference or a perfect disturbance rejection. The linear parameter varying power system stabilizer numerical model analysis and controller synthesis results clearly demonstrate the efficacy of the proposed framework for superior generator oscillation magnitude and duration results under dynamical parameter variations.
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