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Identification of free conducting particles in transformer oils using PD signals

机译:使用PD信号识别变压器油中的自由导电颗粒

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Transformers are known as one of the most important equipment in power system transmission and distribution network. Safety of transformer insulation is determined mainly by its insulating oil dielectric strength. A major concern which threaten the withstand strength of a liquid insulation is the presence of particle contamination. One of the best methods to detect any abnormality and insulation weakness inside the transformer insulation is based on partial discharge (PD) measurement. Here, to identify the presence of conducting particles inside the transformer insulating oil, the general routine used for PD recognition is employed. This process involves the following steps: current signal measurement, PD pulse capture, PD signal parameters extraction, signal categorization based on existing data bases, and finally its diagnosis and finding the source of PD. The PD pulse characteristics related to a floating conductive particle, with different shapes and sizes, under quasi-uniform electric field is studied in this paper. These characteristics related to the particles in transformer oil, besides data mining techniques are employed to analyze the recorded PD measured signals in time domain and subsequently to specify the shape and size of particle. PCA feature extraction method is applied on the frequency domain data, then SVM classifier is used to classify the recorded data. Results based on experimental training and testing data indicate that this method using PD signal information provides a 97 % classification success rate.
机译:变压器是电力系统传输和分配网络中最重要的设备之一。变压器绝缘的安全性主要取决于其绝缘油的介电强度。威胁液体绝缘体的耐受强度的主要问题是颗粒污染的存在。检测局部绝缘(PD)的最佳方法之一是检测变压器绝缘内部是否存在异常和绝缘缺陷。在此,为了识别变压器绝缘油内部是否存在导电颗粒,采用了用于PD识别的常规程序。该过程涉及以下步骤:电流信号测量,局部放电脉冲捕获,局部放电信号参数提取,基于现有数据库的信号分类,最后对其诊断和寻找局部放电的来源。研究了在准均匀电场下具有不同形状和大小的浮动导电颗粒的PD脉冲特性。这些与变压器油中的颗粒有关的特性,除了数据挖掘技术外,还用于在时域中分析记录的局部放电测量信号,并随后指定颗粒的形状和大小。将PCA特征提取方法应用于频域数据,然后使用SVM分类器对记录的数据进行分类。根据实验训练和测试数据得出的结果表明,使用PD信号信息的此方法可提供97%的分类成功率。

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