Root cause investigation of over-current ground relay tripping during energizing parallel autotransformers

Yunfei Wang, Xiaodong Liang, M. Jackman, H. Mazin
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Abstract

In this paper, the root cause of excessive zero-sequence currents observed when energizing parallel autotransformers in a power system is investigated. The studied system is a large international airport in Canada, where its power is supplied by both utility and local distributed generation (DG) feeding the load through two parallel autotransformers. Recent field monitoring data indicated that when the utility, local generators and the first autotransformer were already in operation, there were rich 3rd and 9th order harmonic currents, which caused the over-current ground relay (51G) to trip, during the second autotransformer energizing through its high voltage side while its low voltage side had already been electrically connected to the system. Through this research, the root cause of the problem is determined to be saturation of the two autotransformers. It is found that this is a special phenomenon that only occurs to parallel autotransformers. The PSCAD/EMTDC simulation is conducted for the system, and the simulation model is benchmarked using field measurement data. Two methods are developed in this paper to calculate the maximum RMS zero-sequence current flowing through the two autotransformers: 1) an analytical based simplified equivalent circuit method, and 2) a curve fitting based mathematical equation method. The solutions to prevent mis-operation of the ground relay are proposed and their effectiveness are validated by simulation, and one method has been currently implemented in the field.
并联自耦变压器通电过程中过电流接地继电器跳闸的根本原因研究
本文研究了电力系统中并联自耦变压器通电时零序电流过大的根本原因。所研究的系统是加拿大的一个大型国际机场,其电力由公用事业和本地分布式发电(DG)提供,通过两个并联自耦变压器为负载供电。最近的现场监测数据表明,当公用事业、本地发电机和第一个自耦变压器已经运行时,在第二个自耦变压器高压侧通电时,有丰富的3次和9次谐波电流,导致过流接地继电器(51G)跳闸,而其低压侧已经与系统电连接。通过研究,确定了问题的根本原因是两个自耦变压器的饱和。发现这是一种特殊现象,只发生在并联自耦变压器上。对系统进行了PSCAD/EMTDC仿真,并利用现场测量数据对仿真模型进行了基准测试。本文提出了两种计算两个自耦变压器最大有效值零序电流的方法:1)基于解析的简化等效电路法和2)基于曲线拟合的数学方程法。提出了防止接地继电器误动的解决方案,并通过仿真验证了其有效性,其中一种方法目前已在现场实施。
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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