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Current constriction phenomena in high-current vacuum arc and its influence factors

机译:高电流真空弧中的当前收缩现象及其影响因素

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Based on magnetohydrodynamic (MHD) model, current constriction phenomenon in high-current vacuum arc (HCVA) is researched and analyzed in this paper. According to simulation results, it can be found that the significant current constriction only near anode regions for lower current vacuum arc; but with the increase of arc current, the constriction of arc current also appears near cathode side, and with the further increase of arc current, the current constriction of cathode side can be more significant than that of anode side. The current constriction near cathode side in very high-current vacuum arc can be caused by the MHD process of arc column (associated with the increase of plasma density and plasma pressure). Current constriction phenomena in HCVA is associated with many factors, such as arc currents, AMF strengths, AMF distribution, electrode diameter, electrode separation, plasma status at cathode side and anode side, and so on. The increase of axial magnetic field strength will inhibit the current constriction of the whole arc column. Saddle-shaped AMF can get more uniform current density distribution than bell-shaped AMF. The experimental phenomena of current constriction near cathode side will also be discussed in this paper. Plasma status of cathode side and anode side will influence current distribution of arc column.
机译:基于磁流体(MHD)模型,电流狭窄现象在高电流真空电弧(HCVA)进行了研究,并在本文中进行分析。根据模拟结果,可以发现,显著电流狭窄仅对较低电流真空电弧邻近阳极区;但随着电弧电流的增加,电弧电流的收缩也出现近阴极侧,并用电弧电流的进一步增加,阴极侧的电流狭窄可以比阳极侧的更显著。在非常高的电流真空电弧靠近阴极侧的电流狭窄可以通过电弧柱(用等离子体密度和等离子体压力的增加相关联)的MHD过程引起的。在HCVA电流狭窄现象与很多因素,例如电弧电流,AMF的长处,AMF分布,电极直径,电极分离,在阴极侧和阳极侧的等离子体状态,等等相关联。的轴向磁场强度的增加会抑制整个弧柱的电流狭窄。鞍形AMF可以得到比钟形AMF更均匀的电流密度分布。靠近阴极侧电流狭窄的实验现象也将在本文中讨论。阴极侧和阳极侧的等离子状态会影响弧柱的电流分布。

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