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首页> 外文期刊>Plasma Sources Science & Technology >Fast modelling of low-pressure radio-frequency collisional capacitively coupled discharge and investigation of the formation of a non-Maxwellian electron distribution function
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Fast modelling of low-pressure radio-frequency collisional capacitively coupled discharge and investigation of the formation of a non-Maxwellian electron distribution function

机译:低压射频碰撞电容耦合放电的快速建模以及非麦克斯韦电子分布函数的形成研究

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The principles of fast modelling (FM) of a low-pressure radio-frequency capacitively coupled discharge are presented. They are based on averaging over fast electron and ion motions and on eliminating a small spatial scale, the Debye radius. As a result, the solution of a self-consistent system of the electron kinetic equation, Poisson and ion continuity equations takes approximately 10 min on a 486 PC. The calculation of discharge parameters has been performed for a wide range of current and pressure. The comparison with full-scale Monte Carlo calculations and experimental data has been performed. The performed comparisons demonstrate that the developed method of fast modelling has a good accuracy for calculating the global parameters such as central plasma density, applied voltage, sheath thickness, ionization rate, etc, and the profiles of plasma density and the electric fields. The accuracy of the electron distribution function (EDF) calculation is high when the EDF form is not enriched by slow electrons, and seems satisfactory in the case of a strongly peaked EDF. The results are in qualitatively good agreement with the experiment. The quantitative agreement is mainly within a factor of two. This discrepancy can be attributed to the fact that the EDF form is very sensitive to the details of plasma description, e.g. small variation of cross-sections results in considerable changes in the EDF. The mechanism of non-Maxwellian EDF formation due to non-locality effects has been analysed. The evolution of the low-pressure radio-frequency collisional capacitively coupled discharge with current and pressure variation has been investigated. [References: 30]
机译:介绍了低压射频电容耦合放电的快速建模(FM)原理。它们基于对快速电子和离子运动进行平均,并消除了较小的空间尺度,即德拜半径。结果,在486 PC上,电子动力学方程,泊松方程和离子连续性方程的自洽系统的求解大约需要10分钟。放电参数的计算已针对广泛的电流和压力进行。与完整的蒙特卡洛计算和实验数据进行了比较。进行的比较表明,所开发的快速建模方法对于计算全局参数(如中心等离子体密度,施加电压,鞘层厚度,电离速率等)以及等离子体密度和电场的分布图具有很好的准确性。当EDF形式不被慢速电子富集时,电子分布函数(EDF)的计算精度很高,在强峰EDF情况下似乎令人满意。结果与实验定性良好。定量协议主要在两个因子之内。这种差异可以归因于以下事实:EDF形式对血浆描述的细节非常敏感,例如血浆。横截面的微小变化会导致EDF发生较大变化。分析了非局部效应引起的非麦克斯韦EDF形成机理。研究了低压射频碰撞电容耦合放电随电流和压力变化的演化。 [参考:30]

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