高阻抗和低阻抗母线差动保护的比较

J. Holbach
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引用次数: 6

摘要

高阻抗母线差动继电器在北美的大多数母线上使用。如果在简单的总线系统上使用,该方案在CT饱和方面具有良好的性能和较低的成本,这可以解释它的受欢迎程度。然而,随着数字继电器的引入及其低CT负荷以及测量多个馈线电流的能力,低阻抗母线差分原理也可以应用于简单的母线上。此外,变电站内部光纤通信的可用性允许使用分散总线系统,其中CT输出值通过通信传输到集中单元,而不是将CT导线运行到控制室。低阻抗母线差动保护系统具有许多积极的特性。所有低阻抗母线保护方案的共同优点是能够在各自的支路输入上使用不同比率的CT,并且用于母线保护的相同CT可以与馈线保护继电器共享。需要讨论的问题是,在选择合适的校长时需要评估哪些选择标准。本文将对这两种原理进行概述,并解释在构建和评估差动电流方面的区别。将详细讨论两种方案在外部和内部故障时CT饱和的影响以及CT的要求。介绍了在低阻抗母线差动继电器中应用的一些先进的数值技术,以识别重通故障时的CT饱和,避免误跳闸。我们将详细回顾和解释设定这两项原则的一般准则,并举例说明。讨论了母线系统的复杂性对选择的影响。将比较两种系统的优缺点。比较还将包括不同系统在安装、调试、运行和维护阶段的差异。评估将从技术和经济两方面进行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison between high impedance and low impedance bus differential protection
High impedance bus differential relays are used on most of the busses in North America. The popularity can be explained by the good performance of this scheme in relation to CT saturation and the low cost, if used on a simple bus system. However with the introduction of numerical relays and their low CT burden as well as their ability of measuring several feeder currents, a low impedance bus differential principal could be applied on simple busses also. In addition, the availability of fiber optic communication inside of the substation allows the use of decentralized bus system in which the CT output values becomes transmitted via communication to a centralized unit versus having CT wires running to the control house. Low impedance bus differential protection systems have many positive attributes. Common advantages of all low impedance bus protection schemes are the ability to be able to use CT's of different ratios on respective branch inputs and the fact that the same CT used for the bus protection can be shared with the feeder protection relay. The question needs to be discussed what selection criteria needs to get evaluated for the selection of the appropriate principal. The paper will give an overview on both principles and explain the difference in building and evaluating of the differential current. The effect of CT saturation during external and internal faults will be discussed in details for both schemes as well as the CT requirements. Some advanced numerical techniques employed in low impedance bus differential relays to recognize CT saturation on heavy through-faults and avoid false tripping are presented. Common guidelines for setting both principles will be reviewed and explained in detail and some examples will be shown. The influence of the complexity of the bus system on the selection will be discussed. Benefits and disadvantages of both systems will be compared. The comparison will also include the difference during the installation, commissioning, operation and maintenance phase of the different systems. The evaluation will be done technically as well as economically.
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