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Optimum design of core blocks and analyzing the fringing effect in shunt reactors with distributed gapped-core

机译:分布间隙铁芯并联电抗器堆芯的优化设计及边缘效应分析

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Shunt reactors are designed in the form of cores with air gaps which are distributed along the legs. It is crucial to determine the height of blocks based on its impact on the magnitude of the fringing flux, the number of blocks and other size-related parameters. This study has applied three-dimensional finite element method to a single-phase reactor which is calculated by well-known equations of magnetic circuit theory. This is done to analyze the effects of the fringing flux on the inductance. In this work, air gaps are distributed along the legs in order to determine the effects of the number and height of core blocks on the inductance. The analytical equations, which are used to calculate the optimum heights of core blocks based on the Schwarz-Christoffel transformation, are developed. These equations are derived from the size-related parameters of the reactor and their validity has been fully confirmed by the outcomes of the finite element analysis. There is a good agreement between the height calculated by empirical relations and that estimated using the proposed method in this paper.
机译:并联电抗器设计为铁芯形式,其气隙沿支腿分布。根据其对边缘通量的大小,块数和其他与尺寸有关的参数的影响,确定块的高度至关重要。本研究对单相电抗器应用了三维有限元方法,该方法是根据磁路理论的著名方程计算的。这样做是为了分析边缘磁通对电感的影响。在这项工作中,气隙沿支腿分布,以确定铁心块的数量和高度对电感的影响。建立了基于Schwarz-Christoffel变换的用于计算岩心块最佳高度的解析方程。这些方程式是从反应堆的尺寸相关参数得出的,其有效性已通过有限元分析的结果得到了充分证实。通过经验关系计算的高度与使用本文提出的方法估算的高度之间存在良好的一致性。

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