Comparison of Different Methods for Identification of Dominant Oscillation Mode

Maja Muftić Dedović, S. Avdakovic, A. Mujezinović, Nedis Dautbašić
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Abstract

Abstract This paper introduces and compares the various techniques for identification and analysis of low frequency oscillations in a power system. Inter-area electromechanical oscillations are the focus of this paper. After multiresolution decomposition of characteristic signals, physical characteristics of system oscillations in signal components are identified and presented using the Fourier transform, Prony’s method, Matrix Pencil Analysis Method, S-transform, Global Wavelet Spectrum and Hilbert Huang transform (Hilbert Marginal Spectrum) in time-frequency domain representation. The analyses were performed on real frequency signals obtained from FNET/GridEye system during the earthquake that triggered the shutdown of the North Anna Nuclear Generating Station in the east coast of the United States. In addition, according to the obtained results the proposed methods have proven to be reliable for identification of the model parameters of low-frequency oscillation in power systems. The relevant analyses are carried out in MATLAB coding environment.
优势振型辨识方法的比较
摘要本文介绍并比较了电力系统低频振荡的各种识别和分析技术。区域间机电振荡是本文研究的重点。对特征信号进行多分辨率分解后,利用傅里叶变换、proony方法、矩阵铅笔分析法、s变换、全局小波谱和希尔伯特黄变换(希尔伯特边际谱)的时频表示,识别并呈现了信号分量中系统振荡的物理特征。该分析是对在引发美国东海岸北安娜核电站关闭的地震期间从FNET/GridEye系统获得的真实频率信号进行的。结果表明,该方法对电力系统低频振荡模型参数的辨识是可靠的。在MATLAB编码环境下进行了相关分析。
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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