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An Efficient and Accurate Method for Detection and Classification of Power Quality Disturbances

机译:一种有效,准确的方法,用于检测和分类功率质量干扰

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摘要

Aiming to the problem of large computation amount and high redundancy of traditional S-transform methods available in the detection and classification of transient power quality disturbances, an efficient and accurate method for the detection and classification is proposed. First, the maximum power spectrum dynamics method is used to extract the main frequency points. Then, a called modified incomplete S-transform proposed in the paper is performed on the main frequency points so as to obtain a modulus time-frequency matrix involving the characteristic information of disturbances. The modified incomplete S-transform is implemented by introducing a bi-Gaussian window function with two parameters to replace the Gaussian window function of the traditional S-transform. And then, the characteristic quantities for detecting power quality disturbance and identifying the classification of the disturbances are extracted based on the matrix. Finally, the disturbance parameters such as the amplitude, start time, and stop time of the disturbances are calculated based on the relevant theories and rules, and also the classification of the disturbances is identified by extracting some important characteristic quantities. A great number of simulation experiments are conducted. The results obtained show that by the method, the start time, stop time, and amplitude changes of power quality disturbance signals can be fast and accurately detected, and the classification of the disturbances can be fast and accurately identified, and that the method has the characteristics of less operation time and strong anti-interference ability. (c) 2020 Institute of Electrical Engineers of Japan. Published by John Wiley & Sons, Inc.
机译:旨在解决瞬态功率质量干扰的检测和分类中可用的传统S变换方法的大量计算量和高冗余,提出了一种有效而准确的检测和分类方法。首先,最大功率动力学方法用于提取主要频率点。然后,在本文中提出的称为修改的不完整的S型转换在主频率点上执行,以便获得涉及干扰特征信息的模量时频矩阵。修改后的不完整S传输是通过引入两个参数来替换传统S-Transform的高斯窗口函数来实现的。然后,根据矩阵提取了检测功率质量干扰和识别干扰分类的特征数量。最后,根据相关的理论和规则来计算干扰参数,例如振幅,开始时间和停止时间,并且通过提取一些重要的特征数量来确定干扰的分类。进行了许多模拟实验。获得的结果表明,通过方法,开始时间,停止时间和功率质量干扰信号的幅度变化可以快速,准确地检测到,并且可以快速准确地识别干扰的分类,并且该方法具有操作时间较小和强大的抗干扰能力的特征。 (c)2020年日本电气工程师研究所。由John Wiley&Sons,Inc。出版

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