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Acceleration of ions in a beam-plasma discharge in a low magnetic field: Interrelation between the electron and ion energy distributions

机译:在低磁场下束流等离子体放电中离子的加速:电子和离子能量分布之间的相互关系

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摘要

Previous experiments revealed the effect of stable acceleration of ions in a plasma-beam discharge in a low magnetic field to energies one order of magnitude higher than the electron thermal energy. To verify the previously proposed mechanisms for this effect, the velocity distribution function of the electrons arriving at the collector and the energy distribution of the ions escaping from the discharge transversely to the axis were measured. It is found that ion acceleration is accompanied by significant electron heating near the discharge axis. The time behavior and longitudinal profile of the intensity of the excited high-frequency oscillations in the frequency range omega similar to omega(pe) were studied. The accumulation of regular oscillations in the beam-injection region and their stochastization during the propagation along the system axis were observed. The experimental results correlate qualitatively with the data of previous numerical simulations.
机译:先前的实验揭示了在低磁场下等离子束放电中离子稳定加速产生的能量,其能量比电子热能高一个数量级的作用。为了验证先前提出的用于此效果的机制,测量了到达收集器的电子的速度分布函数以及从放电横向于轴逸出的离子的能量分布。发现离子加速伴随着在放电轴附近的大量电子加热。研究了在类似于ω(pe)的ω频率范围内被激发的高频振荡的强度的时间行为和纵向分布。观察到在光束注入区域中规则振动的积累以及在沿系统轴的传播过程中它们的随机性。实验结果与先前数值模拟的数据在质量上相关。

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