高阻抗故障检测教程

J. Theron, Amit Pal, A. Varghese
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引用次数: 17

摘要

高阻抗故障一般不能被常规的过流、接地、距离、差动等保护功能检测到,这是因为故障路径中所涉及的阻抗的大小,以及故障电流的性质和特征与常规的故障电流曲线有特殊的区别。每种类型的高阻抗故障在故障电流的大小、性质、特征和波形方面都是独特的。大多数高阻抗故障是单相对地故障,但这也可能涉及相对相元件。由于传统的保护功能无法检测高阻抗故障,特别是高阻抗相对地故障,电导体在这种情况下仍然带电,可想而知,这对野生动物,更对人类的生命构成了巨大而重大的威胁。大气和地理条件直接影响到故障电流的大小和特征,在接地高阻抗阶段起着重要的作用。本文介绍了检测高阻抗相接地故障的不同技术,重点介绍了已在保护继电器中实现的成熟算法,这些算法已通过实际现场测试和带电线路故障开始验证。这篇论文大体上是作为教程来组织的。首先介绍了高阻抗故障的特点和检测高阻抗故障所面临的挑战。本文接着详细介绍了一些用于高阻抗故障检测的重要技术,突出了它们的优缺点,并提出了一些提高保护方案可靠性的现代方法。特别地,提出了一种结合故障波形的基波和谐波分析的技术,以及它在与公用事业公司合作进行的现场试验中的表现。
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Tutorial on high impedance fault detection
High impedance faults are generally not detected by conventional protection functions like over current, ground fault, distance, differential etc. because of the magnitude of impedance involved in the fault path and the nature and characteristic of the fault current are special and different than the conventional fault current profiles. Each type of high impedance fault is unique in terms of magnitude of fault current, nature, characteristic and waveshape. Majority of the high impedance faults are single phase to ground faults but this can involve phase to phase elements as well. Because of the inability of the conventional protection functions to detect high impedance faults especially high impedance phase to ground faults, the electrical conductor remains live under such condition and as can be imagined, poses a huge and significant risk to wild life and more importantly human life. Atmospheric and geographical conditions have a significant role to play in high impedance phase to ground faults since they have a direct impact on the magnitude and characteristic of the fault current. This paper describes different techniques to detect high impedance phase to ground faults and focuses on the proven algorithms that have been implemented in protection relays, had been verified by real site tests and fault inception on live power lines. The paper is broadly organized as a tutorial. The characteristics of high impedance faults and the challenges involved in detecting them are described first. The paper then goes on to detail some of the important techniques in use for high impedance fault detection highlighting their strengths and weaknesses, and some modern approaches proposed to improve the dependability of protection schemes. In particular, a technique combining the fundamental and harmonic analysis of the fault waveform is presented, along with its performance in field trials carried out in co-operation with utilities.
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