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Differential Protection of Power Transformers based on RSLVQ-Gradient Approach Considering SFCL

机译:基于RSLVQ梯度方法考虑SFCL的电力变压器差分保护

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One of the most challenging issues in protecting power transformers is to discriminate internal faults from inrush currents. This paper proposes a new approach for differential protection of power transformers based on the robust soft learning vector quantization (RSLVQ) method. Statistical features from the normalized differential current gradient are extracted in order to train the RSLVQ classifier. Furthermore, the performance of the proposed differential protection scheme is investigated in the presence of superconductor fault current limiter (SFCL), which can greatly affect the ability of differential protection schemes in correctly discriminating inrush from internal fault currents. The PSCAD/EMTDC software is utilized to generate sampled data in order to evaluate the performance of the proposed approach. The results obtained from the evaluation of the proposed method verified the promising performance of the RSLVQ-based differential protection scheme.
机译:保护电力变压器中最具挑战性的问题之一是区分浪涌电流的内部故障。 本文提出了一种基于鲁棒软学习矢量量化(RSLVQ)方法的电力变压器差动保护方法。 提取来自归一化差分电流梯度的统计特征以训练RSLVQ分类器。 此外,在超导体故障电流限制器(SFCL)的存在下,研究了所提出的差动保护方案的性能,这可以大大影响差动保护方案在从内部故障电流的正确区分中的能力。 PSCAD / EMTDC软件用于生成采样数据,以评估所提出的方法的性能。 从所提出的方法评价获得的结果验证了基于RSLVQ的差分保护方案的有希望的性能。

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