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Direct Vlasov simulations of electron-attracting cylindrical Langmuir probes in flowing plasmas

机译:流动等离子体中吸引电子的圆柱形Langmuir探针的直接Vlasov模拟

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摘要

Current collection by positively polarized cylindrical Langmuir probes immersed in flowing plasmas is analyzed using a non-stationary direct Vlasov-Poisson code. A detailed description of plasma density spatial structure as a function of the probe-to-plasma relative velocity U is presented. Within the considered parametric domain, the well-known electron density maximum close to the probe is weakly affected by U. However, in the probe wake side, the electron density minimum becomes deeper as U increases and a rarified plasma region appears. Sheath radius is larger at the wake than at the front side. Electron and ion distribution functions show specific features that are the signature of probe motion. In particular, the ion distribution function at the probe front side exhibits a filament with positive radial velocity. It corresponds to a population of rammed ions that were reflected by the electric field close to the positively biased probe. Numerical simulations reveal that two populations of trapped electrons exist: one orbiting around the probe and the other with trajectories confined at the probe front side. The latter helps to neutralize the reflected ions, thus explaining a paradox in past probe theory.
机译:使用非平稳直接Vlasov-Poisson编码分析浸没在流动等离子体中的正极化圆柱形Langmuir探针的电流收集。给出了等离子体密度空间结构随探针对等离子体相对速度U的函数的详细描述。在所考虑的参数域内,靠近探针的众所周知的电子密度最大值受U的影响很小。但是,在探针唤醒侧,随着U的增加,最小的电子密度变得更深,并且出现了稀疏的等离子体区域。尾流处的鞘半径大于前侧。电子和离子分布功能显示出特定特征,这些特征是探针运动的标志。特别地,在探针前侧的离子分布功能表现出具有正径向速度的细丝。它对应于被正偏压探针附近电场反射的夯实离子群。数值模拟表明,存在两个被困电子,一个围绕着探测器旋转,另一个围绕着轨迹,位于探测器正面。后者有助于中和反射的离子,从而解释了过去探针理论中的一个悖论。

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