电弧阴极腐蚀速率随等离子体气体和阴极材料的模型预测

X. Zhou, J. Heberlein, E. Pfender
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引用次数: 12

摘要

我们之前已经报道了一项理论研究的结果,该研究预测高电流电弧阴极腐蚀主要取决于阴极材料的功函数和蒸气压,而热设计起次要作用。这些结果是用一个新开发的阴极区域自洽模型得到的,该模型包括一个真实的一维鞘层模型。对氩弧和钨阴极进行了实验研究。现已对该模型进行了扩展,并得到了适用于不同电弧气体和不同电极材料的结果。电弧气体具有很强的影响,因为它不仅影响电弧和阴极区交界处的温度,而且影响阴极区和阴极处的电子密度。计算结果表明,正极材料对阴极点温度和阴极材料蒸发质量损失率起主导作用。由于在钨中加入氧化钍降低了阴极材料的功函数,从而降低了阴极点温度和蒸发损失率。对于相同的正极材料,氢导致的阴极点温度和质量损失率最高,其次是氮和氩。阴极光斑处的电流密度、阴极光斑大小和从阴极光斑移出的能量通量的百分比主要由等离子体气体而不是由阴极材料决定。
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Model predictions of arc cathode erosion rate dependence on plasma gas and on cathode material
We have previously reported results of a theoretical study which predict that high current arc cathode erosion is predominantly dependent on the work function and the vapor pressure of the cathode material, and that the thermal design plays a secondary role. These results have been obtained with a newly developed self-consistent model of the cathode region including a realistic one-dimensional sheath model. The results have been obtained for an argon arc and a tungsten cathode. The model has now been extended and results have been obtained for different arc gases and different electrode materials. The arc gas has a strong effect because it affects not only the temperature at the boundary between the arc and the cathode region, but also the electron density in the cathode region and at the cathode. The results of the calculations show that the cathode material plays a dominant role in terms of the cathode spot temperature and the associated mass loss rate by evaporation of cathode material. Since the addition of thorium oxide to tungsten reduces the work function of the cathode material, the cathode spot temperature as well as the mass loss rate by evaporation are reduced. For the same cathode material, hydrogen leads to the highest cathode spot temperature and mass loss rate, followed by nitrogen and argon. The current density at the cathode spot, the cathode spot size, and the percentages of the energy fluxes removed from the cathode spot are mainly determined by the plasma gas rather than by the cathode material.
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