Wavelet Transform and Artificial Intelligence for Unbalanced Current Protection of 230kV Capacitor Switching Transient Inrush Current

C. Pothisarn, A. Ngaopitakkul
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Abstract

High transient inrush currents from back-to-back capacitor switching can cause the maloperation of protective relays, especially the instantaneous overcurrent (50) and unbalanced current protection relays (60C). This paper presents a combination of discrete wavelet transforms and artificial intelligence as an efficient technique to analyze the inrush current switching. The discrete wavelet transform is used to detect and classify either isolated or back-to-back capacitor switching transient signals. After that, the output from wavelet coefficients acts as the artificial intelligence input for discriminating the 6-difference cases of transient inrush current mitigation methods by using the combination of discrete wavelet transform and fuzzy inference system and discrete wavelet transform and probabilistic neural network. The proposed technique of discrete wavelet transform for detection and classification shows enhanced performance accuracy of 100 %. The fuzzy inference system and probabilistic neural network that can discriminate the inrush current mitigation methods have a high accuracy of 90.57 % and 96.72 %, respectively.
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小波变换与人工智能在230kV电容器开关暂态涌流不平衡电流保护中的应用
电容背靠背开关产生的高瞬态涌流会引起保护继电器误动作,特别是瞬时过流(50)和不平衡电流保护继电器(60C)。本文提出了离散小波变换与人工智能相结合的方法,作为一种分析励磁涌流开关的有效方法。离散小波变换用于隔离或背靠背电容开关暂态信号的检测和分类。然后,将离散小波变换与模糊推理系统、离散小波变换与概率神经网络相结合,将小波系数的输出作为人工智能输入,对6种不同的暂态涌流缓解方法进行判别。所提出的离散小波变换检测和分类技术的性能精度提高了100%。模糊推理系统和概率神经网络分别能识别出90.57%和96.72%的浪涌抑制方法。
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