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SIMULATION STUDY OF DIRECT CURRENT VACUUM BREAKDOWN AND ITS APPLICATION TO HIGH-GRADIENT ACCELERATING STRUCTURES

机译:直流真空分解的仿真研究及其在高梯度加速结构中的应用

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It is well known that radio frequency breakdown is one of the main limitations in high frequency accelerators. Similarities have been detected between breakdowns in direct current vacuum gaps and those in superconducting radio frequency cavities. Therefore, cavity breakdowns due to electric field phenomena can be understood by studying direct current vacuum breakdowns. Significant irregularity of a surface and a variety of involved processes objectively stipulate a number of factors which may lead to a breakdown. In this paper, the effects of surface conditions, accelerator gradient, pulse length, and operating frequency on the breakdown have been studied by using COMSOL simulation package. It was found that the dependence of breakdown rate on accelerating gradient and pulse length follows scaling laws. Based on the time evolutions of electron density and the potential in cone-cylinder electrode configuration at the pressure of 0.1 Pa, the time scale of a vacuum breakdown has been established. It was also confirmed that the emission from an electrode surface can be regarded as a major factor leading to electrical breakdown in vacuum. The obtained results could be very useful in high-gradient accelerating structures.
机译:众所周知,射频击穿是高频加速器中的主要限制之一。在直流真空空隙中的击穿和超导射频空腔中的击穿之间检测到相似性。因此,通过研究直流真空击穿,可以理解由于电场现象引起的腔衰弱。表面的显着不规则性和各种涉及的过程客观地规定了可能导致击穿的多种因素。本文采用COMSOL仿真包研究了表面条件,加速器梯度,脉冲长度和工作频率对击穿的影响。发现击穿率对加速梯度和脉冲长度的依赖性遵循缩放法律。基于电子密度的时间促进和锥缸电极构造的电位在0.1Pa的压力下,已经建立了真空击穿的时间标度。还证实,来自电极表面的发射可以被认为是导致真空中电击的主要因素。获得的结果对于高梯度加速结构非常有用。

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