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Cathode-constriction and column-constriction in high current vacuum arcs subjected to an axial magnetic field

机译:高电流真空弧中的阴极收缩和柱内收缩,其经受轴向磁场

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摘要

The influence of the applied axial magnetic field on the current density distribution in the arc column and electrodes is intensively studied. However, the previous results only provide a qualitative explanation, which cannot quantitatively explain a recent experimental data on anode current density. The objective of this paper is to quantitatively determine the current constriction subjected to an axial magnetic field in high-current vacuum arcs according to the recent experimental data. A magnetohydrodynamic model is adopted to describe the high current vacuum arcs. The vacuum arc is in a diffuse arc mode with an arc current ranged from 6 kA(rms) to 14 kA(rms) and an axial magnetic field ranged from 20 mT to 110 mT. By a comparison of the recent experimental work of current density distribution on the anode, the modelling results show that there are two types of current constriction. On one hand, the current on the cathode shows a constriction, and this constriction is termed as the cathode-constriction. On the other hand, the current constricts in the arc column region, and this constriction is termed as the column-constriction. The cathode boundary is of vital importance in a quantitative model. An improved cathode constriction boundary is proposed. Under the improved boundary, the simulation results are in good agreement with the recent experimental data on the anode current density distribution. It is demonstrated that the current density distribution at the anode is sensitive to that at the cathode, so that measurements of the anode current density can be used, in combination with the vacuum arc model, to infer the cathode current density distribution.
机译:积极研究施加的轴向磁场对电流柱和电极电流密度分布的影响。然而,先前的结果仅提供定性解释,其不能定量地解释最近关于阳极电流密度的实验数据。本文的目的是根据最近的实验数据定量地确定经受高电流真空弧中的轴向磁场的电流收缩。采用磁性动力学模型来描述高电流真空弧。真空电弧处于漫射电弧模式,电弧电流范围为6ka(rms)至14ka(rms),轴向磁场范围为20 mt至110 mt。通过对阳极上电流密度分布的最近实验工作的比较,建模结果表明存在两种类型的电流收缩。一方面,阴极上的电流表示收缩,并且该收缩被称为阴极收缩。另一方面,电弧柱区域中的电流收缩,并且该收缩被称为列收缩。阴极边界在定量模型中是至关重要的。提出了一种改进的阴极收缩边界。在改进的边界下,模拟结果与最近关于阳极电流密度分布的实验数据吻合良好。结果证明,阳极处的电流密度分布对阴极处的敏感性,使得可以与真空电弧模型组合使用阳极电流密度的测量以推断阴极电流密度分布。

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