Calculation of the ion current to a conducting cylinder in a supersonic flow of a collisionless plasma

D. Lazuchenkov, N. Lazuchenkov
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引用次数: 1

Abstract

The diagnostics of low-temperature plasma flows using cylindrical probes is based on the classical Langmuir relation for the ion current to a thin, in comparison with the Debye length, cylinder. The aim of this work is to study the applicability of the Langmuir relation for a cylinder whose radius exceeds the Debye length. The interaction of a conducting cylinder with a rarefied plasma flow was simulated numerically. The cylinder had a negative potential with respect to the plasma. Free molecular flow around the cylinder was simulated on the basis of a two-dimensional system of the Vlasov–Poisson equations. The electron-repulsing local equilibrium self-consistent electric field was calculated using the Poisson–Boltzmann model in the approximation of local equilibrium electrons and taking into account an electron sink on the cylinder surface in the central field approximation. The Vlasov equations for ions and the Poisson–Boltzmann equations for the self-consistent electric field were solved on nested grids by a finite-difference relaxation method with splitting by physical processes and using the method of characteristics. The reliability of the calculated results was confirmed by the solution of known model problems and a comparison with the results of other authors and the results of solving identical physical problems with the use of different mathematical models and methods. The ion current to a cylinder placed transversely to a plasma flow was calculated as a function of the cylinder potential, the ion velocity ratio, and the ratio of the characteristic dimension of the cylinder to the Debye length. From the calculated results, numerical estimates were obtained for the range of applicability of the classical Langmuir relation for the ion current to a cylinder whose radius exceeds the Debye length. The results obtained may be used in the diagnostics of supersonic flows of a low-temperature rarefied plasma.
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在无碰撞等离子体的超音速流动中流向导电圆柱体的离子电流的计算
使用圆柱形探针诊断低温等离子体流动是基于离子电流与德拜长度圆柱体的经典朗缪尔关系。本文的目的是研究朗缪尔关系对于半径超过德拜长度的圆柱体的适用性。用数值方法模拟了导电圆柱体与稀薄等离子体流的相互作用。圆柱体相对于等离子体有负电位。在二维Vlasov-Poisson方程组的基础上,模拟了圆柱周围的自由分子流动。采用局域平衡电子近似的泊松-玻尔兹曼模型计算了电子排斥的局域平衡自洽电场,并在中心场近似中考虑了柱面上的电子汇。采用物理过程分裂有限差分松弛法和特征法在嵌套网格上求解了离子的弗拉索夫方程和自洽电场的泊松-玻尔兹曼方程。通过对已知模型问题的解和与其他作者的结果的比较,以及用不同的数学模型和方法求解相同物理问题的结果,证实了计算结果的可靠性。离子流向与等离子体流横向放置的圆柱体的电流计算为圆柱体电位、离子速度比和圆柱体特征尺寸与德拜长度之比的函数。根据计算结果,对离子电流的经典Langmuir关系在半径超过德拜长度的圆柱体上的适用范围进行了数值估计。所得结果可用于诊断低温稀薄等离子体的超音速流动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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