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Injection into Electron Plasma Traps

机译:注入电子等离子阱

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Computational studies and experimental measurements of plasma injection into a Malmberg-Penning trap reveal that the number of trapped particles can be an order of magnitude higher than predicted by a simple estimates based on a ballistic trapping model. Enhanced trapping is associated with a rich nonlinear dynamics generated by the space-charge forces of the evolving trapped electron density. A particle-in-cell simulation is used to identify the physical mechanisms that lead to the increase in trapped electrons. The simulations initially show strong two-stream interactions between the electrons emitted from the cathode and those reflected off the end plug of the trap. This is followed by virtual cathode oscillations near the injection region. As electrons are trapped, the initially hollow longitudinal phase-space is filled, and the transverse radial density profile evolves so that the plasma potential matches that of the cathode. Simple theoretical arguments are given that describe the different dynamical regimes. Good agreement is found between simulation and theory.
机译:计算研究和对注入Malmberg-Penning阱的等离子体的实验测量表明,被捕获的粒子数量可能比基于弹道捕获模型的简单估算所预测的数量高一个数量级。增强的俘获与不断变化的俘获电子密度的空间电荷力产生的丰富的非线性动力学有关。单元中的粒子模拟用于识别导致捕获电子增加的物理机制。模拟最初显示了从阴极发射的电子与从阱的端塞反射回来的电子之间的强两流相互作用。随后是注入区域附近的虚拟阴极振荡。随着电子被捕获,最初的中空纵向相空间被填充,并且横向径向密度分布发生变化,使得等离子体电势与阴极电势匹配。给出了描述不同动力机制的简单理论论证。在仿真和理论之间找到了很好的一致性。

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