基于WAMS和多元线性回归的实时导纳矩阵辨识研究

W. Jing, Zhou Huizhi, L. Dichen, Guo Ke, Han Xiangyu
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引用次数: 1

摘要

本文提出了基于PMU实时测量和发电机动态方程的电力系统故障后配置参数估计的MLR(多元线性回归)算法。该算法利用广域测量系统采集的实时数据,在不了解电力系统具体参数、故障类型或结构的情况下,考虑到复杂的级联故障事件。这一吸引人的特点避免了在实际工程中确定瞬态事件参数和拓扑状态的难题,使复杂摄动轨迹的预测成为可能。该算法已在各种电力系统上进行了测试,仿真结果准确可靠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on real-time admittance matrix identification based on WAMS and multiple linear regression
This paper proposes the MLR (multiple linear regression) algorithm for parameter estimation of power system post-fault configuration based on the PMU real-time measurement and generator dynamic equations. Using real-time data collected by wide-area measurement system, the algorithm can take complicated cascading fault events into consideration without any information about the specific parameter and fault type or structure of the power system. This attractive feature avoids the difficult problem to determine the parameter and the topology state of a transient event in actual projects, making it possible for the complex perturbed trajectories prediction. The proposed algorithm has been tested on various sample power systems with promising and accurate simulation results.
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