A Hybrid Signal Processing Technique for Identification and Categorization of Faults in IEEE-9 Bus System

Abhishek Gupta, Ramesh Kumar Pachar
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Abstract

A hybrid signal processing technique (HSPT) is proposed in this manuscript for identification and categorization of faults in electrical transmission network. A fault indicator (FI) is suggested by decomposition of the currents by application of Alienation coefficient (ACF), Stockwell transform (ST) and Hilbert transform (HT) for identification of faults. An indicator for ground involvement during faulty condition (SGFI) is being suggested to detect the type of fault. The categorization of faults is done by utilizing faulty phase numbers and SGFI. It is found that the proposed technique is effective in identification of faults and to classify them in different scenarios together with fault on A-phase to ground (AGF), double phase fault (ABF), fault on two phases and ground (ABGF), three phase fault (ABCF) and three phase fault including ground (ABCGF). Study is done and validated on IEEE-9 bus system using MATLAB/Simulink environment. The effectiveness and applicability of the proposed technique with respect to different parameters of faults such as Fault Incidence Angle, Fault Impedance, Line loading, Generator Supply and Noise level is also checked. The results shows that proposed scheme is able to detect and classify the faults in different faulty events.
基于混合信号处理技术的IEEE-9总线故障识别与分类
本文提出了一种用于输电网络故障识别和分类的混合信号处理技术(HSPT)。利用疏离系数(ACF)、斯托克韦尔变换(ST)和希尔伯特变换(HT)对电流进行分解,提出了故障指示器(FI)来识别故障。建议在故障状态下使用接地介入指示器(SGFI)来检测故障类型。利用故障相数和SGFI对故障进行分类。结果表明,该方法可以有效地识别故障,并对a相接地故障(AGF)、双相故障(ABF)、两相接地故障(ABGF)、三相故障(ABCF)和三相含地故障(ABCGF)等不同场景下的故障进行分类。在MATLAB/Simulink环境下对IEEE-9总线系统进行了研究和验证。对不同的故障参数,如故障入射角、故障阻抗、线路负荷、发电机供电和噪声水平,验证了该方法的有效性和适用性。结果表明,该方法能够对不同故障事件中的故障进行检测和分类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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