Application of zero-sequence filter on transformer differential protection

R. Cimadevilla
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引用次数: 4

Abstract

Delta-Wye transformer connections create discontinuities in the zero-sequence network as the zero-sequence current can flow at one side of the transformer without flowing at the other side. This effect generates a zero-sequence differential current that can make the differential unit trip. Traditional solutions applied to remove the zero sequence differential current where based on delta connected CTs. Zero-sequence filters in digital relays are software implemented. In many digital relays the zero sequence filter can be enabled or disabled. On the other hand, some relays can remove the zero-sequence current calculated from the phase currents or from the ground currents (currents measured in the neutral grounding). This paper reviews the transformer configurations that require the enabling of the zero-sequence filter by taking into account not only the connection group but also the construction of the magnetic core (this aspect is not always considered), explaining in detail the phantom or virtual tertiary effect of three-legged wyre-wye transformers. Real false trips due to this effect are included. The paper also explains the differences between both methods used for the zero-sequence current calculation (the one based on the phase currents and the one based on the ground current). The influence on the differential unit, harmonic restraint and common external fault detectors is analyzed. The first method can lead to a reduction of the differential current and to an erroneous phase selection during an internal fault. However, "2 out of 3" logics both for harmonic blocking and for a phase directional comparison unit can be implemented increasing the stability The second method provides very good sensibility and phase selection but does not allow the implementation of the "2 out of 3" logics reducing the stability. Cases based on real events and RTDS simulations are reviewed.
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零序滤波器在变压器差动保护中的应用
由于零序电流可以在变压器的一侧流动而不在另一侧流动,因此三角型变压器连接会在零序网络中产生不连续。这种效应产生零序差动电流,使差动装置跳闸。传统的解决方案应用于消除零序差分电流,其中基于三角连接ct。数字继电器中的零序滤波器是用软件实现的。在许多数字继电器中,零序滤波器可以启用或禁用。另一方面,一些继电器可以从相电流或接地电流(在中性点接地中测量的电流)中去除计算出的零序电流。本文回顾了需要启用零序滤波器的变压器配置,不仅考虑了连接组,而且考虑了磁芯的构造(这方面并不总是考虑),详细解释了三腿线形-线形变压器的幻像或虚拟三级效应。由于这种影响,真正的假绊倒也包括在内。本文还解释了用于零序电流计算的两种方法(基于相电流的方法和基于地电流的方法)的区别。分析了对差动单元、谐波约束和常用外部故障检测器的影响。第一种方法可能导致差动电流的减小,并在内部故障期间导致错误的选相。第二种方法提供了非常好的灵敏度和相位选择,但不允许实现降低稳定性的“3分之2”逻辑。回顾了基于真实事件和RTDS模拟的案例。
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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