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首页> 外文期刊>International Journal of Electrical Power & Energy Systems >Accurate voltage sag-source location technique for power systems using GACp and multivariable regression methods
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Accurate voltage sag-source location technique for power systems using GACp and multivariable regression methods

机译:使用GACp和多变量回归方法的电力系统精确电压暂降源定位技术

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摘要

Voltage sags and outages affect power quality (PQ) in terms of service continuity and disturbance propagation. Many methods have been adopted for locating the source of voltage sags in power systems; however, most of the methods can only identify the relative location of the sag source. This paper presents a new method to identify the exact voltage sag-source location in a power system based on the multivariable regression (MVR) model. In the proposed method, the number and placement of the PQ monitors are first determined by genetic algorithm and the Mallow's Cp index. By considering the monitoring buses as independent variable in the MVR model, suitable regression coefficients are obtained from the training data to estimate the unmonitored bus voltages. The fully trained MVR models are then used to determine the maximum voltage deviation and minimum standard deviation, which in turn identify the exact voltage sag-source location. To validate the proposed method, the IEEE 9bus and 30bus test systems are used. The results show that the MVR model provides good accuracy in locating the voltage sag source.
机译:电压骤降​​和中断会影响服务连续性和干扰传播的电能质量(PQ)。已经采用了许多方法来定位电力系统中的电压骤降的源。但是,大多数方法只能识别下垂源的相对位置。本文提出了一种基于多变量回归(MVR)模型识别电力系统中电压骤降源位置的新方法。在提出的方法中,PQ监视器的数量和位置首先通过遗传算法和Mallow's Cp指数确定。通过将监视总线视为MVR模型中的自变量,可以从训练数据中获得合适的回归系数,以估计未监视的总线电压。然后,使用经过全面培训的MVR模型来确定最大电压偏差和最小标准偏差,进而确定电压骤降源的确切位置。为了验证所提出的方法,使用了IEEE 9bus和30bus测试系统。结果表明,MVR模型在定位电压骤降源方面具有良好的准确性。

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