Protection challenges for transmission lines with long taps

J. Patten, Majid Malki, Matt Jones
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引用次数: 4

Abstract

Tapped transmission lines are quite common as they provide a low cost solution to connect remote loads without incurring the prohibitive cost of building a substation and the associated protective equipment. However, adding a tap in the line complicates the protection scheme and introduces unique challenges for the protection engineer. Protecting transmission lines with long taps is even more challenging. The effects of infeed can result in a fault on the tap having a larger apparent impedance than a fault at the remote end of the line. Setting relay elements to provide adequate coverage of long taps can cause coordination issues with remote lines. This paper will illustrate, through some real world examples, the issue of protecting transmission lines with long taps and discuss some options for protecting long taps. Three examples will be used to explore different scenarios with tapped transmission lines: •The first example will look at how a redundant POTT scheme is used to protect a line with a 15 mile tap in the middle of a 20 mile 69 kV sub-transmission line. •The second example will highlight the effect of the location of the tap on the line by examining a line with a tap located at 95% of the line length from one end. •The third example will explore how the relative strength of the system will impact the protection of lines with a long tap. In this example, one terminal is much stronger source than the other. The system strength on the line under study will be determined by calculation of the source impedance ratio. A short circuit program with automated scripts will be used to illustrate these examples and run different contingency scenarios. Sensitivity and coordination scripts will be run to check the validity of the proposed settings. The last part of the paper will discuss the issues related to fault location on transmission lines with long taps.
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长抽头输电线路的保护挑战
抽头输电线路非常普遍,因为它们提供了一种低成本的解决方案来连接远程负载,而不会产生建设变电站和相关保护设备的高昂成本。然而,在线路中增加抽头使保护方案复杂化,给保护工程师带来了独特的挑战。保护长龙头的输电线路更具挑战性。进料的影响会导致抽头上的故障,该故障比线路远端的故障具有更大的表观阻抗。设置继电器元件以提供足够的长抽头覆盖可能会导致远程线路的协调问题。本文将通过一些现实世界的例子来说明保护长抽头输电线路的问题,并讨论保护长抽头的一些选择。将使用三个示例来探索带有抽头的传输线的不同场景:•第一个示例将研究如何使用冗余POTT方案来保护20英里69千伏子传输线中间带有15英里抽头的线路。•第二个例子将通过检查从线的一端到线长度的95%的位置的水龙头来突出显示水龙头在线上的位置的影响。•第三个例子将探讨系统的相对强度如何影响长抽头线路的保护。在这个例子中,一个终端比另一个强得多。研究线路上的系统强度将通过计算源阻抗比来确定。将使用带有自动脚本的短路程序来说明这些示例并运行不同的应急场景。将运行敏感性和协调脚本来检查所建议设置的有效性。论文的最后一部分讨论了长抽头输电线路的故障定位问题。
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