电力系统暂态稳定的随机非线性励磁控制器

Yan Xu, F. Wen, I. Palu, Zeng Yang, Minghui Chen, Hongwei Zhao, Huiyu Shang
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引用次数: 1

摘要

可再生能源系统(如风能和太阳能)引起的随机扰动可能会恶化电力系统的暂态稳定性问题。本文提出了一种用于多机电力系统暂态稳定增强的随机非线性励磁控制器。发电机采用三阶模型。提出了一种新的概率稳定性判据,其中明确地包含了随机扰动的大小。然后用非线性随机微分方程组来表示整个电力系统。所提出的励磁控制器是利用随机端口-哈密顿系统的特性来实现的。与基于确定性电力系统模型的控制器设计方法相比,该方法可以提高系统在连续随机扰动下的稳定性。此外,在该方法中,选择哈密顿函数作为随机Lyapunov函数也很方便。最后,通过一个三相故障的两区测试系统验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Stochastic Nonlinear Excitation Controller for Transient Stabilization in a Power System
Stochastic disturbances caused by renewable energy systems (e.g., wind power and solar power) may deteriorate the transient stability problems in a power system. This paper proposes a stochastic nonlinear excitation controller for transient stability enhancement in a multimachine power system. The third-order model of generators is adopted. A new probabilistic stability criterion is presented where the magnitude of a stochastic disturbance is included explicitly. Then the whole power system is represented by a nonlinear stochastic differential equation set. The proposed excitation controller is implemented by leveraging the feature of a stochastic port-Hamiltonian system. Compared with the controller design methods based on the deterministic power system model, the proposed method can improve the system stability even in the presence of continuous stochastic disturbances on power injections. Besides, it is convenient to select the Hamiltonian function as the stochastic Lyapunov function in the proposed approach. Finally, the effectiveness of the proposed method is demonstrated by a two-area test system with a three-phase fault.
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