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Simulation of cathode plasma expansion in magnetically-insulated transmission lines

机译:磁绝缘传输线中阴极等离子体膨胀的模拟

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We describe a novel algorithm for the generation of cathode plasma expansion in particle-in-cell codes, and have applied the algorithm to investigate cathode plasma expansion in magnetically-insulated transmission lines (MITLs) in the particle-in-cell code LSP. The steady-state MITL electron current is modeled by a fully-kinetic electron species. Neutral particles are then desorbed from the cathode surface at a fixed rate and are allowed to fragment into electron-ion pairs as they propagate over a short distance, generally one or two cell widths, normal to the surface. These electron-ion pairs, modeled as fluid species, form the seed cathode plasma. Energetic plasma electron particles can be converted to kinetic electrons to resupply the electron flux at the plasma edge (the “effective” cathode). Using this model, we compare results for the time evolution of the cathode plasma and MITL electron flow with a simplified (isothermal) ambipolar diffusion model. We find good agreement between the two approaches for the time evolution of the coupled system of cathode plasma and MITL electrons.
机译:我们描述了一种新的算法,用于在单元格粒子代码中生成阴极等离子体扩展,并已应用该算法来研究在单元格粒子代码LSP中的磁绝缘传输线(MITL)中的阴极等离子体扩展。稳态MITL电子电流由完全运动的电子物种建模。然后,中性粒子以固定的速率从阴极表面解吸,并随着中性粒子在垂直于表面的短距离(通常为一或两个单元宽度)中传播而分裂成电子离子对。这些被建模为流体物种的电子离子对形成了种子阴极等离子体。高能的等离子体电子粒子可以转换为动能电子,以重新补充等离子体边缘(“有效”阴极)处的电子通量。使用这个模型,我们用简化的(等温)双极扩散模型比较了阴极等离子体和MITL电子流的时间演化结果。我们发现这两种方法之间的阴极等离子体和MITL电子耦合系统的时间演化有很好的一致性。

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