Practical EHV reactor protection

Faridul Katha Basha, M. Thompson
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引用次数: 22

Abstract

Shunt reactors are applied to long, high-voltage transmission lines to offset the impact of line charging capacitance to prevent high voltage during lightly loaded conditions. Shunt reactors are becoming more prevalent associated with the construction of long transmission lines to connect remote wind energy sources to load centers. During conditions when wind generation is at a minimum, the system is more likely to need reactive compensation to control high voltage on the transmission system. It can be difficult to design a protection system that provides adequate sensitivity to the extremely low levels of fault current for in-zone reactor faults, especially turn-to-turn faults, while remaining dependable for high-level terminal faults that are not limited by the impedance of the reactor. Current transformer (CT) selection criteria must balance sensitivity with performance during switching and internal faults. Often, standard equipment ratings put further restrictions on CT sizing selection. This paper discusses the different reactor types currently used, their characteristics, CT selection and performance issues, and different types of reactor faults. The paper also provides guidelines to practicing engineers to evaluate reactor protection design and determine protection elements and relay settings for a high-voltage transmission line shunt reactor. The discussion of various factors that affect the sensitivity and dependability of the protection elements helps in understanding the challenges encountered while determining relay settings. Detailed examples of CT performance calculations and guidelines are provided for protection element settings calculations.
实用超高压电抗器保护
并联电抗器应用于长高压输电线路,以抵消线路充电电容的影响,防止在轻负载条件下产生高电压。并联电抗器正变得越来越普遍,因为它与连接偏远风能和负荷中心的长输电线路的建设有关。在风力发电最小的条件下,系统更有可能需要无功补偿来控制输电系统上的高压。对于区域内电抗器故障,特别是匝间故障,设计一种保护系统,既能对极低水平的故障电流提供足够的灵敏度,又能对不受电抗器阻抗限制的高电平终端故障保持可靠,这是很困难的。电流互感器的选择标准必须在灵敏度、开关性能和内部故障之间取得平衡。通常,标准设备额定值进一步限制了CT尺寸的选择。本文讨论了目前使用的不同电抗器类型,它们的特点,CT的选择和性能问题,以及不同类型的电抗器故障。本文还为执业工程师评估电抗器保护设计和确定高压输电线路并联电抗器的保护元件和继电器设置提供了指导。对影响保护元件灵敏度和可靠性的各种因素的讨论有助于理解在确定继电器设置时遇到的挑战。提供了CT性能计算的详细示例和保护元件设置计算指南。
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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