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2D semiempirical model of the formation of an elementary crater on the cathode of a vacuum arc

机译:在真空电弧阴极上形成基本坑的二维半经验模型

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A semiempirical hydrodynamic model based on the cellular structure of the cathode spot of a vacuum arc has been developed to describe the formation of a microcrater on the cathode and the initial stage of the formation of liquid-metal jets. The model includes experimentally obtained characteristics of the cathode spot plasma interacting with the cathode, such as the pressure exerted by the plasma on the cathode and the energy balance in the arc. In the context of a 2D axisymmetric statement of the problem of electric heat and mass transport in a cathode, the formation of a crater on a copper cathode has been simulated for a constant current carried by a elementary cathode spot cell. It has been shown that for the cell current ranging between 1.6 and 7 A and the time of current flow through the cell ranging between 15 and 60 ns, the crater diameter is 3÷7 μm. The crater depth is determined mainly by the current density in the cell. For all calculation variants where a micrometer-size crater was formed in several tens of nanoseconds, the maximum current density in a cell was (1÷3)·108 A/cm2.
机译:已经开发了基于真空电弧阴极点的蜂窝结构的半经验流体力学模型,以描述在阴极上形成微火山口的过程以及液态金属射流形成的初始阶段。该模型包括通过实验获得的与阴极相互作用的阴极斑点等离子体的特性,例如等离子体对阴极施加的压力以及电弧中的能量平衡。在关于阴极中电热和质量传输问题的2D轴对称陈述的背景下,对于基本阴极点电池所承载的恒定电流,已经模拟了在铜阴极上形成火山口的过程。已经显示出,对于单元电流在1.6和7A之间的电流以及流过单元的电流时间在15和60ns之间的时间,弹坑直径是3÷7μm。弹坑深度主要由电池中的电流密度决定。对于在数十纳秒内形成微米级火山口的所有计算变体,单元中的最大电流密度为(1÷3)·108 A / cm2。

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