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首页> 外文期刊>International Transactions on Electrical Energy Systems >DT-CWT based event feature extraction for high impedance faults detection in distribution system
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DT-CWT based event feature extraction for high impedance faults detection in distribution system

机译:基于DT-CWT的事件特征提取,用于配电系统高阻抗故障检测

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摘要

In this paper an algorithm for high impedance fault detection is presented. This algorithm uses dual tree complex wavelet transform to extract the features of disturbance signals according to the post- and predisturbance data windows. There are also a frequency tracking unit and a disturbance detection unit in this algorithm for enhancing the resolution of features. A trained probabilistic neural network is used to discriminate between the fault and other events. EMTP-RV has been used for simulation of various events with different conditions for training and testing the algorithm. As this algorithm uses the features extracted from the events, the fault detection can be done with more reliability. Results of implementing the algorithm for high impedance fault detection in a distribution test feeder show a high level of dependability and security.Copyright © 2014 John Wiley & Sons, Ltd
机译:本文提出了一种用于高阻抗故障检测的算法。该算法采用双树复数小波变换,根据扰动前后的数据窗口提取扰动信号的特征。该算法中还有一个频率跟踪单元和一个干扰检测单元,用于增强特征的分辨率。训练有素的概率神经网络用于区分故障和其他事件。 EMTP-RV已用于模拟具有不同条件的各种事件,以训练和测试算法。由于该算法使用从事件中提取的特征,因此可以更可靠地完成故障检测。在配电测试馈线中实施高阻抗故障检测算法的结果显示出高度的可靠性和安全性。版权所有©2014 John Wiley&Sons,Ltd

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