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A fault current calculation method in a neutral point ungrounded system for a single-phase ground fault

机译:中性点未接地系统中的故障电流计算方法,用于单相接地故障

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When a single-phase ground fault in a neutral point ungrounded system occurs, the fault current includes not only a power frequency component, but also a transient component with short duration, large original amplitude, and relatively concentrated energy. Rapid and accurate calculation of the full fault current is the basis for realizing full fault current compensation. One method for full fault current calculation of a single-phase grounding fault in a non-solidly grounded system is proposed. Here a Γ equivalent circuit is applied to model the feeders, and its feasibility and rationality are analyzed. Then based on the Kirchhoff Current Law and three-phase time-domain voltage signals from bus TVs, the full fault current can be calculated via differential equations that are used to describe the Γ equivalent circuit. The calculation results can provide a basis for full fault current compensation. A simulation case indicates that the method used for calculating a full fault current based on a Γ equivalent circuit has the advantages of discernible principle, rapid and accurate calculation, less electrical quantities needed, and being independent of fault line selection. It can meet the demand of a full fault current compensation for a single-phase grounding fault in a non-solidly grounded system.
机译:当发生中性点未接地系统中的单相接地故障时,故障电流不仅包括功率频率分量,而且包括短期持续时间,大的原始幅度和相对浓度的瞬态部件。快速准确地计算全故障电流是实现全故障电流补偿的基础。提出了一种用于非稳定接地系统中单相接地故障的全故障电流计算的一种方法。这里施加γ等效电路以模拟进料器,分析其可行性和合理性。然后基于来自总线电视的基于Kirchhoff目的法和三相时域电压信号,可以通过用于描述γ等效电路的微分方程来计算全故障电流。计算结果可以为全故障电流补偿提供基础。仿真情况表明,用于计算基于γ等效电路的全故障电流的方法具有可辨别,快速准确的计算,需要较少,所需的电量较少,以及与故障线路选择无关的优点。它可以满足在非稳定接地系统中的单相接地故障的全故障电流补偿的需求。

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