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An Extended Kalman Filter for Detecting Voltage Sag Events in Power Systems

机译:用于检测电力系统中电压暂降事件的扩展卡尔曼滤波器

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Voltage sag event is one of the most important power quality disturbances in power systems. It can have affect on voltage quality and sensitive equipment in power systems. Detecting voltage sag events in power systems is a vital role in operating systems##therefore, this paper proposes an algorithm based on extended Kalman filter (EKF) for characterizing and detecting the parameters of voltage sag events accurately. A status-space modeling of voltage sag signals is defined to model voltage sag signal according to status-space modeling of EKF. The parameters of voltage sag events are estimated using the proposed method including voltage magnitude, estimation error, starting and ending times, duration time of the event. Matlab software is used to generate database of voltage sag waveforms modeled by a mathematical equation and then the waveforms are used to evaluate the proposed method. The simulation results of the proposed method are also compared with the simulation results of the root mean square (RMS) method to confirm the effectiveness of the proposed method in this paper.
机译:电压骤降​​事件是电力系统中最重要的电能质量扰动之一。它可能会影响电源系统中的电压质量和敏感设备。因此,检测电力系统中的电压暂降事件在操作系统中起着至关重要的作用。因此,本文提出了一种基于扩展卡尔曼滤波器(EKF)的算法,用于准确表征和检测电压暂降事件的参数。定义电压暂降信号的状态空间建模,以根据EKF的状态空间建模对电压暂降信号进行建模。使用所提出的方法来估计电压骤降事件的参数,包括电压幅度,估计误差,开始和结束时间,事件的持续时间。使用Matlab软件生成通过数学方程式建模的电压骤降波形数据库,然后使用这些波形评估所提出的方法。将该方法的仿真结果与均方根(RMS)方法的仿真结果进行了比较,以验证该方法的有效性。

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