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首页> 外文期刊>Journal of Applied Physics >Plasma expansion as a cause of metal displacement in vacuum‐arc cathode spots
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Plasma expansion as a cause of metal displacement in vacuum‐arc cathode spots

机译:等离子体膨胀是真空电弧阴极斑点中金属移位的原因

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The pressure on the molten surface of a vacuum‐arc cathode due to the recoil from outward‐directed ion jets is calculated for copper arcs. The calculation uses current density data and electrode force per unit current data from experiment. In addition, the force per unit current measured by Tanberg is shown to be consistent with a calculation of the same quantity based on the energy of outgoing ions measured by Davis and Miller and the so‐called saturated positive‐ion current measured by Kimblin. The ion recoil pressure is shown to be sufficient to remove molten metal from a cathode‐spot crater in time of the order of 25–250 nsec with a velocity of 2×103-2×104 cm sec-1. It is shown that motion of molten metal in the cathode‐spot crater must be considered as a first‐order effect in rigorous calculations of surface temperature and heat flow in the metal in contact with the cathode‐spot plasma. It is suggested that the rapid removal of metal by the plasma pressure causes molten droplets to be ejected, as has been observed experimentally, and causes a preference for the cathode to operate, after the liquid is ejected, on the rim of the crater or nearby on the surface where hotter metal may exist due to liquid‐metal overflow and spatter.
机译:对于铜电弧,计算了由向外指向的离子流引起的反冲导致的真空电弧阴极熔融表面上的压力。该计算使用来自实验的电流密度数据和每单位电流数据的电极力。此外,Tanberg测得的每单位电流的力与基于Davis和Miller测得的输出离子能量以及Kimblin测得的所谓饱和正离子电流的相同数量的计算结果是一致的。结果表明,离子反冲压力足以在25–250 ns的时间内以2×103-2×104 cm sec-1的速度从阴极斑点坑中除去熔融金属。结果表明,在严格计算与阴极斑点等离子体接触的金属的表面温度和热流时,必须考虑将熔融金属在阴极斑点火山口中的运动视为一阶效应。建议通过等离子压力快速去除金属,这会导致熔融液滴的喷出,如实验观察到的那样,并且在液体喷出后,优选使阴极在火山口的边缘或附近运行由于液态金属溢出和飞溅而在可能存在较热金属的表面

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    《Journal of Applied Physics 》 |1974年第5期| P.2078-2084| 共7页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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