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High impedance fault detection method based on improved complete ensemble empirical mode decomposition for DC distribution network

机译:基于改进的整体集成经验模式分解的直流配电网高阻抗故障检测方法

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摘要

Aiming at DC distribution network, we proposed a novel high impedance fault detection method in the paper, it main procedures are as follows: Firstly, used the algorithm of complete ensemble empirical mode decomposition with adaptive noise (CEEMDAN) to extract the first intrinsic mode function (IMF) of the characteristic mode. Secondly, calculated the singular point of mutation and the cumulative slope by the acquisition of the first order difference operation, and then, achieved to distinguish the fault state and the normal state by the comparison between the slope and the starting threshold. Thirdly, identified the first IMF with Prony algorithm to obtain the parameters of characteristic frequency components (CFC) and direct current components (DC), and calculated the energy ratio between them, and then, distinguished small impedance fault (SIF), medium impedance fault (MIF), high impedance fault (HIF) and load switching (LS) by different values of energy ratio. A large number of experiments show that the proposed method is accurate and effective. Compared with other methods, this method shows its merits in feature extraction accuracy, detection accuracy and calculation speed.
机译:针对直流配电网,本文提出了一种新的高阻抗故障检测方法,其主要步骤如下:首先,采用自适应噪声完全集成经验模态分解算法(CEEMDAN)提取第一本征函数。 (IMF)的特征模式。其次,通过一阶差分运算的获取来计算突变的奇异点和累积斜率,然后通过将斜率与起始阈值进行比较来实现区分故障状态和正常状态。第三,用Prony算法确定第一个IMF,得到特征频率分量(CFC)和直流分量(DC)的参数,并计算它们之间的能量比,然后区分出小阻抗故障(SIF),中阻抗故障(MIF),高阻抗故障(HIF)和负载切换(LS)通过不同的能量比值。大量实验表明,该方法准确有效。与其他方法相比,该方法在特征提取精度,检测精度和计算速度上具有优势。

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