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Estimating inter-area dominant oscillation mode in bulk power grid using multi-channel continuous wavelet transform

机译:多通道连续小波变换估计大电网区域间主导振荡模式

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摘要

This paper proposes a novel continuous wavelet transform(CWT) based approach to holistically estimate the dominant oscillation using measurement data from multiple channels. CWT has been demonstrated to be effective in estimating power system oscillation modes.Using singular value decomposition(SVD) technique, the original huge phasor measurement unit(PMU) datasets are compressed to finite useful measurement data which contain critical dominant oscillation information. Further,CWT is performed on the constructed measurement signals to form wavelet coefficient matrix(WCM) at the same dilation. Then, SVD is employed to decompose the WCMs to obtain the maximum singular value and its right eigenvector. A singular value vector with the entire dilation is constructed through the maximum singular values. The right eigenvector corresponding to the maximum singular value in the singular-value vector is adopted as the input of CWT to estimate the dominant modes. Finally, the proposed approach is evaluated using the simulation data from China Southern Power Grid(CSG) as well as the actual field-measurement data retrieved from the PMUs of CSG.The simulation results demonstrate that the proposed approach performs well to holistically estimate the dominant oscillation modes in bulk power systems.
机译:本文提出了一种基于新的连续小波变换(CWT)的方法,以使用来自多个通道的测量数据来全面估计显性振荡。已经证明CWT在估计电力系统振荡模式方面是有效的。奇异值分解(SVD)技术,原始的大型相量测量单元(PMU)数据集被压缩成有限的有用测量数据,其包含关键优势振荡信息。此外,在构造的测量信号上执行CWT以在相同扩张处形成小波系数矩阵(WCM)。然后,使用SVD来分解WCM以获得最大奇异值及其正确的特征向量。具有整个扩张的奇异值矢量通过最大奇异值构建。采用与奇异值矢量中最大奇异值对应的正确特征向量作为CWT的输入来估计显性模式。最后,使用来自中国南方电网(CSG)的模拟数据以及从CSG的PMU检索的实际现场测量数据来评估所提出的方法。模拟结果表明,所提出的方法表现良好,以全面估计显性散装电力系统中的振动模式。

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