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首页> 外文期刊>Vacuum: Technology Applications & Ion Physics: The International Journal & Abstracting Service for Vacuum Science & Technology >Comparative numerical study of the dynamics, ion beam and flow energetics of fast and slow focus modes in a 2 kJ plasma focus operated in various gases
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Comparative numerical study of the dynamics, ion beam and flow energetics of fast and slow focus modes in a 2 kJ plasma focus operated in various gases

机译:在各种气体中的2kJ等离子焦点中快速慢速焦点模式动力学,离子束和流量能量学的比较数值研究

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Comparative study of fast focus mode (FFM) and slow focus mode (SFM) of INTI Plasma Focus device at 12 kV, based on Lee Model, are presented in this paper. Results of numerical experiments for D, Ne, and Ar gases at different pressure ranges show that as a rule-of-thumb, diameter-optimized SFM is considered to occur when fast plasma stream speed generated by pinch column is equal to the peak axial phase speed. SFM occurs at the high-pressure range of operation when beam ion energy is typically less than a few keV. Results of speed factor, fast ion beam energy, FPS energy, FIB damage factor, plasma footprint radius for FFM and SFM at different pressures of D, Ne, and Ar are presented. These results may be used to predict different applications of both modes: for example, the intense beam and flow energetics in FFM may be of interest in irradiation of surfaces for damage studies; whilst in SFM, the larger area of reduced intensity of plasma flow and very low energy per beam ion result in more uniform irradiation over a larger area of target. This larger more uniform area of irradiation has distinct advantages in nanophase material synthesis by diameter-optimized SFM.
机译:本文介绍了基于LEE模型的12kV在12kV的INTI等离子体聚焦装置的快速焦点模式(FFM)和慢焦点(SFM)的比较研究。不同压力范围的D,Ne和Ar气体的数值实验结果表明,作为拇指的规则,当夹柱产生的快速等离子体流速等于峰值轴相时,被认为发生直径优化的SFM速度。当光束离子能量通常小于几kEV时,SFM在高压操作范围内发生。介绍了速度因数,快速离子束能量,FPS能量,FFM和SFM在D,NE和AR的不同压力下的血浆损伤系数,等离子体足迹半径。这些结果可用于预测两种模式的不同应用:例如,FFM中的强烈梁和流量能量可能感兴趣地辐射损伤研究;在SFM中,较大的等离子体流量的强度降低和每个光束离子的非常低的能量导致在较大的靶面积上照射更均匀的照射。这种较大均匀的辐射区域具有直径优化SFM的纳米材料合成具有明显的优势。

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