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首页> 外文期刊>International Journal of Electrical Power & Energy Systems >A novel algorithm for fault classification in transmission lines using a combined adaptive network and fuzzy inference system
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A novel algorithm for fault classification in transmission lines using a combined adaptive network and fuzzy inference system

机译:结合自适应网络和模糊推理系统的输电线路故障分类新算法

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摘要

Accurate detection and classification of faults on transmission lines is vitally important. In this respect, many different types of faults occur, inter alia low impedance faults (LIF) and high impedance faults (HIF). The latter in particular pose difficulties for the commonly employed conventional overcurrent and distance relays, and if not detected, can cause damage to expensive equipment, threaten life and cause fire hazards. Although HIFs are far less common than LIFs, it is imperative that any protection device should be able to satisfactorily deal with both HIFs and LIFs. Because of the randomness and asymmetric characteristics of HIFs, the modelling of HIF is difficult and many papers relating to various HIF models have been published. In this paper, the model of HIFs in transmission lines is accomplished using the characteristics of a ZnO arrester, which is then implemented within the overall transmission system model based on the electromagnetic transients programme. This paper proposes an algorithm for fault detection and classification for both LIFs and HIFs using Adaptive Network-based Fuzzy Inference System (ANFIS). The inputs into ANFIS are current signals only based on Root-Mean-Square values of three-phase currents and zero sequence current. The performance of the proposed algorithm is tested on a typical 154 kV Korean transmission line system under various fault conditions. Test results show that the ANFIS can detect and classify faults including (LIFs and HIFs) accurately within half a cycle.
机译:准确检测和分类传输线上的故障至关重要。在这方面,发生许多不同类型的故障,尤其是低阻抗故障(LIF)和高阻抗故障(HIF)。后者尤其给常用的常规过电流和距离继电器带来困难,并且如果不被发现,则可能导致昂贵设备的损坏,生命危险并引起火灾。尽管HIF远不及LIF常见,但任何保护设备都必须能够令人满意地处理HIF和LIF。由于HIF的随机性和不对称性,HIF的建模非常困难,并且已经发表了许多与各种HIF模型有关的论文。在本文中,利用ZnO避雷器的特性完成了输电线路中HIF的模型,然后在电磁瞬变程序的基础上在整个传输系统模型中实现了该模型。本文提出了一种基于自适应网络的模糊推理系统(ANFIS)对LIF和HIF进行故障检测和分类的算法。 ANFIS的输入仅是基于三相电流和零序电流的均方根值的电流信号。在各种故障条件下,在典型的154 kV韩国输电线路系统上测试了该算法的性能。测试结果表明,ANFIS可以在半个周期内准确地检测和分类故障(包括LIF和HIF)。

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