先进的距离保护应用,适用于动态负载和失步情况

D. Tholomier, S. Richards, A. Apostolov
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引用次数: 14

摘要

距离继电器作为传输线最常见的保护类型已经成功地使用了很多年。具有mho特性的机电和固态继电器的发展可以被认为是在世界各地不同电压等级下广泛接受这种类型保护的重要因素。距离继电器的1区用于为传输线的很大一部分提供初级高速保护。区域2用于覆盖受保护线路的其余部分,并为远程端总线提供一些备份。区域3是连接到远端总线的所有线路的备份保护。2003年8月北美大停电以及2006年11月欧洲最近发生的骚乱的经验表明,在骚乱的不同阶段,许多距离继电器在动态负载期间的行为以及随后在某些地区发生的失步情况的重要性。实施距离继电器需要了解其工作原理。以及在不同的异常条件下影响设备性能的因素。分析了在动态加载和故障检测的情况下,解决视阻抗对距离特性的负载侵占的不同方法。另一个重要的问题是距离继电器在稳定或不稳定的失步状态下的操作。根据距离继电器在系统中的位置和事件类型,继电器可以使用所选距离元件的阻塞或跳闸(如果需要分离)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced distance protection applications fot dynamic loading and out-of step condition
Distance relays have been successfully used for many years as the most common type of protection of transmission lines. The development of electromechanical and solid state relays with mho characteristics can be considered as an important factor in the wide spread acceptance of this type of protection at different voltage levels all over the world. Zone 1 of distance relays is used to provide primary highspeed protection of a significant portion of the transmission line. Zone 2 is used to cover the rest of the protected line and provide some backup for the remote end bus. Zone 3 is the backup protection for all the lines connected to the remote end bus. The experience from the North American blackout in August 2003, as well as the recent European disturbance in November 2006 demonstrated the importance that the behavior of many distance relays had during the dynamic loading at different stages of the disturbance and the out-of-step conditions that followed in some areas The implementation of distance relays requires understanding of its operating principles, as well as the factors that affect the performance of the device under different abnormal conditions. The paper analyzes different methods for resolving the load encroachment of the apparent impedance into the distance characteristic as a result of dynamic loading and the detection of faults at that time. Another important issue is the operation of distance relays during stable or unstable out-of-step conditions. Depending on the location of the distance relays in the system and the type of event the relays may use blocking of the selected distance elements or tripping if separation is required.
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