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Investigation of explosive electron emission sites on surface of polished cathodes in vacuum

机译:真空中抛光阴极表面爆炸性电子发射部位的研究

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The field enhancement effect of the surface microstructures of electrodes with two different surface treatments is evaluated, on the basis of observations made by a 3-D laser microscope. The maximum field enhancement factor of the micro-protrusions on the surface after turning or mirror polishing is about 1–5.8. The vacuum gap breakdown strength of the mirror polished electrodes is 1–1.4 times higher than that of the turned electrodes, because the surface grooves are removed. Experiments to test the breakdown strength of 2.5 cm vacuum gaps with the electrodes after the treatments were carried out and the experimental results were found to correspond to the analysis. The results also revealed that it is not enough to induce explosive electron emission and vacuum breakdown just by the field enhancement at the micro-protrusions and grooves. Moreover, the emission sites of mirror polished cathode made of titanium alloy and stainless steel after vacuum breakdown were observed by a scanning electron microscope and an energy dispersive spectrometer. The results show that the proportion of carbon atoms in the damaged area of the stainless steel cathode surface is as high as 40–70%, and most of the pits located at the grain boundaries, which suggests that grain boundaries have important effects on the electron emission and vacuum breakdown.
机译:根据3-D激光显微镜的观察结果,对经过两种不同表面处理的电极表面微观结构的场增强效果进行了评估。车削或镜面抛光后,表面上微凸起的最大场增强因子约为1–5.8。镜面抛光电极的真空间隙击穿强度比翻转电极的真空间隙击穿强度高1–1.4倍,因为去除了表面凹槽。进行了实验,测试了处理后电极与2.5 cm真空间隙的击穿强度,发现实验结果与分析结果相符。结果还表明,仅通过微凸起和凹槽处的电场增强,还不足以引起爆炸性电子发射和真空击穿。此外,通过扫描电子显微镜和能量分散光谱仪观察到真空击穿后由钛合金和不锈钢制成的镜面抛光阴极的发射点。结果表明,不锈钢阴极表面损伤区域的碳原子比例高达40-70%,且大多数凹坑位于晶界,这表明晶界对碳的产生有重要影响。电子发射和真空击穿。

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    Science and Technology on High Power Microwave Laboratory, Northwest Institute of Nuclear Technology, P.O. Box 69 Branch 13, Xi'an, 710024, China;

    Science and Technology on High Power Microwave Laboratory, Northwest Institute of Nuclear Technology, P.O. Box 69 Branch 13, Xi'an, 710024, China;

    Science and Technology on High Power Microwave Laboratory, Northwest Institute of Nuclear Technology, P.O. Box 69 Branch 13, Xi'an, 710024, China;

    Science and Technology on High Power Microwave Laboratory, Northwest Institute of Nuclear Technology, P.O. Box 69 Branch 13, Xi'an, 710024, China;

    Science and Technology on High Power Microwave Laboratory, Northwest Institute of Nuclear Technology, P.O. Box 69 Branch 13, Xi'an, 710024, China;

    Key laboratory of Physical Electronics and Devices of Ministry of Education, Xi'an Jiaotong University, No.28 West Xianning Rd., Xi'an, 710049, China;

    Key laboratory of Physical Electronics and Devices of Ministry of Education, Xi'an Jiaotong University, No.28 West Xianning Rd., Xi'an, 710049, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
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