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Study on design of axial magnetic field electrodes depending on electrode diameter and current

机译:基于电极直径和电流轴向磁场电极设计的研究

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The presence of anode spot before current zero limits the performance of practical vacuum interrupters. Using an AMF(axial magnetic field) is one of the methods to prevent anode spot formation and to keep arc plasma in a diffuse mode. A lot of papers have been published concerning the magnitude of an AMF and electrode shapes for diffuse arcs. Big electrode diameter and large area of high AMFs ensure better breaking performance. Therefore, the area where AMF per current is over 4mT/kA, which is called the effective area, has been calculated and used in designing electrodes. However, it is difficult to calculate the effective area and the exact diameter as the area does not change proportionally according to electrode diameter. So a new concept is needed in order to design electrodes irrespective of diameter. In this paper, using a high speed camera, the behavior of vacuum arcs were analyzed depending on arc currents and electrode diameter and compared with the results of magnetic field analysis. A new design criterion for diffuse arcs was established by using concepts such as the effective area and the effective current density when arc currents were assumed to flow only through the effective area.
机译:电流零之前的阳极点的存在限制了实际真空中断器的性能。使用AMF(轴向磁场)是防止阳极点形成的方法之一,并将电弧等离子体保持在漫射模式中的一种方法之一。已经发布了许多论文关于漫射弧的AMF和电极形状的大小。大电极直径和大面积的高AMF确保更好的断裂性能。因此,已经计算并使用了每个电流为每个电流的区域超过4mt / ka,其被称为有效面积,并用于设计电极。然而,难以计算有效面积和精确直径,因为该区域不会根据电极直径比例地改变。因此,需要一种新的概念,以便无论直径都设计电极。本文采用高速相机,根据电弧电流和电极直径进行分析真空弧的行为,并与磁场分析的结果相比。通过使用诸如有效面积和有效电流密度的概念来建立新的漫射弧的新设计标准,当假设电弧电流仅通过有效区域流动时。

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