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Approach to fitting parameters and clustering for characterising measured voltage dips based on two-dimensional polarisation ellipses

机译:基于二维极化椭圆的参数拟合和聚类方法,用于表征测得的电压骤降

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摘要

An alternative approach to characterise real voltage dips is proposed and evaluated in this study. The proposed methodology is based on voltage-space vector solutions, identifying parameters for ellipses trajectories by using the least-squares algorithm applied on a sliding window along the disturbance. The most likely patterns are then estimated through a clustering process based on the k-means algorithm. The objective is to offer an efficient and easily implemented alternative to characterise faults and visualise the most likely instantaneous phase-voltage evolution during events through their corresponding voltage-space vector trajectories. This novel solution minimises the data to be stored but maintains extensive information about the dips including starting and ending transients. The proposed methodology has been applied satisfactorily to real voltage dips obtained from intensive field-measurement campaigns carried out in a Spanish wind power plant up to a time period of several years. A comparison to traditional minimum root mean square-voltage and time-duration classifications is also included in this study.
机译:本研究提出并评估了表征实际电压骤降的替代方法。所提出的方法基于电压-空间矢量解,通过使用沿着扰动的滑动窗口上应用的最小二乘算法来识别椭圆轨迹的参数。然后通过基于k-means算法的聚类过程估计最可能的模式。目的是提供一种有效且易于实现的替代方案,以通过事件的相应电压-空间矢量轨迹来表征故障并可视化事件期间最可能的瞬时相电压演变。这种新颖的解决方案可以最大程度地减少要存储的数据,但可以保留有关骤降的大量信息,包括开始和结束瞬变。所提出的方法已令人满意地应用于从西班牙风力发电厂进行的密集现场测量活动中获得的实际电压骤降,有效期长达数年。这项研究还包括与传统最小均方根电压和持续时间分类的比较。

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