Robust Control via LMIs Applied to Small-Signal Stability in Power Systems

Jefferson C. Rezende, Luis Carvalho, M. Costa, Elenilson V. Fortes, Leonardo H. Macedo
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Abstract

This article proposes the application of a linear quadratic regulator feedback controller designed via linear matrix inequalities using the $\mathfrak{D}$-stability concept to add damping to low-frequency electromechanical oscillations and ensure the stability of the single machine infinite bus electric power system, which was modeled using the current sensitivity model considering polytopic uncertainties. The objective is to insert a stabilizing signal into the system through the automatic voltage regulator of the synchronous generator. In the simulations, parametric variations in the system load are considered, as well as exogenous disturbances in the form of an increase in the mechanical input power on the generator’s shaft. In addition, the performance of the proposed controller is compared with optimal control approaches already known in the literature. Therefore, according to the obtained results, it is possible to verify that the proposed control approach is efficient for stabilizing the system since it has better performance indices than the optimal control approach, as well as the response in the frequency domain shows that the proposed controller is robust, thus accrediting the control strategy as a powerful tool in the study of small-signal stability in electrical power systems.
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基于lmi的鲁棒控制在电力系统小信号稳定中的应用
本文采用考虑多面体不确定性的电流灵敏度模型对单机无限母线电力系统进行建模,提出了采用线性矩阵不等式设计的线性二次型调节器反馈控制器,以增加低频机电振荡的阻尼,保证系统的稳定性。目标是通过同步发电机的自动电压调节器将稳定信号插入系统。在仿真中,考虑了系统负载的参数变化,以及以发电机轴上机械输入功率增加的形式出现的外源干扰。此外,所提出的控制器的性能与文献中已知的最优控制方法进行了比较。因此,根据得到的结果,可以验证所提出的控制方法对系统的稳定是有效的,因为它具有比最优控制方法更好的性能指标,并且在频域的响应表明所提出的控制器是鲁棒的,从而使控制策略成为研究电力系统小信号稳定性的有力工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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