RITS上气体和等离子体填充细胞中的电子束输运

K. Hahn, E. Schamiloglu, D. Welch, B. Oliver, J. Maenchen, N. Bruner, G. Cooper, S. Cordova, M. Johnston, J. Mclean, I. Molina, S. Portillo, D. Rose, D. Rovang, D. van de Valde, D. Ziska
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引用次数: 5

摘要

在过去的30年里,近轴二极管利用充满气体的传输单元将电子束聚焦到高z目标上,以产生用于闪光放射照相的强x射线。其中一个关键目标是创建一个小的射线照相点,这反过来又与光束的聚焦动力学有关。对于充满气体的传输单元,实现小时间积分光斑尺寸的主要限制被认为是由于光束在脉冲的时间尺度上穿过焦平面。这导致比期望的时间积分射线照相斑点更大。最近使用LSP(一种细胞内粒子编码)进行的模拟发现,如果使用密度为1016 cm-3的预电离等离子体传输细胞,那么光束焦平面基本上在时间上被“冻结”,从而限制了由于光束扫描而导致的斑点生长。桑迪亚国家实验室最近进行了实验,研究了气体和等离子体填充运输细胞的斑点行为随时间的变化。在等离子体填充实验中,使用静态氢的z放电在传输细胞中产生高度电离的等离子体。充气实验中,输送槽内充入压力为0.5-5 Torr的氢气或空气。对气体和等离子体填充传输细胞的焦点光斑进行了时间分辨和时间积分测量,并进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electron Beam Transport in Gas and Plasma-filled Cells on RITS
Over the past 30 years, the paraxial diode has utilized a gas-filled transport cell to focus an electron beam onto a high-Z target in order to generate intense x-rays for flash radiography. One of the key objectives is to create a small radiographic spot, which in turn is related to the focusing dynamics of the beam. For gas-filled transport cells, the primary limitation to achieving a small time-integrated spot size is believed to be due to beam sweeping through the focal plane on the timescale of the pulse. This results in a larger than desired time-integrated radiographic spot. Recent simulations using LSP, a particle-in-cell code, have found that if a pre-ionized plasma transport cell is utilized with density on the order of 1016 cm-3, then the beam focal plane is essentially "frozen" in time, thereby limiting spot growth due to beam sweep. Recent experiments at Sandia National Laboratories have been conducted to investigate the spot behavior as a function of time for both gas and plasma-filled transport cells. For the plasma-filled experiments, a z-discharge of static hydrogen is used to create a highly ionized plasma in the transport cell. For the gas-filled experiments, the transport cell is filled with either hydrogen or air with pressures of 0.5-5 Torr. Time-resolved as well as time integrated measurement of the focal spot are presented and compared for both the gas and plasma-filled transport cells.
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