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Nonlinear Modal Identification of Power System Response Signals Using Higher Order Statistics

机译:基于高阶统计量的电力系统响应信号非线性模态识别

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In this paper a novel technique for the detection and estimation of nonlinear mode coupling in power system time series is presented. This technique allows for the simultaneous determination of both, frequency and damping of the nonlinearly coupled modes and can be used to detect and analyze nonlinearities in stressed power systems. Using higher order statistics, techniques are devised for the detection and frequency estimation of coupling frequencies. First, a parametric method for bispectrum estimation based on a non-Gaussian autoregressive (AR) driven model is developed and used to characterize the nonlinear dynamics of oscillatory processes following large perturbations. Analysis methods are then investigated for extracting the relevant amplitude and phase of the coupled modes in both, the time and frequency domains. The method extends current linear identification techniques based on Prony analysis to the case of nonlinear systems with frequency modulation. A simplified 4-machine, 6-bus test power system is used to illustrate the applicability of the technique.
机译:本文提出了一种用于电力系统时间序列中非线性模式耦合的检测和估计的新技术。该技术允许同时确定非线性耦合模式的频率和阻尼,并且可以用于检测和分析应力电力系统中的非线性。使用高阶统计量,设计了用于耦合频率的检测和频率估计的技术。首先,开发了一种基于非高斯自回归(AR)驱动模型的双谱估计参数方法,并将其用于表征大扰动后振荡过程的非线性动力学。然后研究分析方法,以提取时域和频域中耦合模式的相关幅度和相位。该方法将基于Prony分析的当前线性识别技术扩展到具有频率调制的非线性系统的情况。一个简化的4机6总线测试电源系统用于说明该技术的适用性。

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