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A comparison between kinetic theory and particle-in-cell simulations of anomalous electron transport in E x B plasma discharges

机译:E×B等离子体放电中的动力学理论与粒子电池模拟的比较

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摘要

Understanding anomalous electron transport in ExB discharges remains a key challenge in the development of self-consistent models of these systems. It has been shown that short-wavelength, high-frequency instabilities in the azimuthal ExB direction may be responsible for increased electron transport due to an enhanced electron-ion friction force. Although a theoretical model based on quasi-linear kinetic theory has previously been proposed to describe this friction force, it has so far only undergone limited validation testing. Here, we rigorously assess this theoretical model by comparison with the friction force self-consistently obtained from 2D axial-azimuthal particle-in-cell simulations. The simulation geometry is based on a recently established benchmark configuration for ExB discharges, and a broad parametric study is performed by varying the magnetic field strength, the discharge current density, and the presence of different neutral collisional processes. Overall, the theory is found to be in very good agreement with the simulation results for all cases studied, verifying the underlying physical mechanisms leading to enhanced electron transport. We demonstrate, however, that the friction force depends sensitively on the shape of the electron velocity distribution function, thus posing significant challenges to fully self-consistent, first principles modeling of anomalous transport in fluid simulations. Published under license by AIP Publishing.
机译:了解EXB排放中的异常电子传输仍然是这些系统的自我一致模型的开发中的关键挑战。已经表明,由于增强的电子离子摩擦力,方位角方向方向上的短波长,高频不置于方位方向上的高频空转可能负责。尽管先前已经提出了基于准线性动力学理论的理论模型来描述这种摩擦力,但到目前为止仅经历了有限的验证测试。在这里,我们通过与由2D轴向 - 方位角粒子内模拟的自持续获得的摩擦力进行比较,严格地评估了该理论模型。模拟几何形状基于最近建立的EXB放电的基准配置,并且通过改变磁场强度,放电电流密度和不同中性局部过程的存在来执行广泛的参数研究。总体而言,该理论被发现与研究结果的仿真结果非常好,验证导致电子传输增强的潜在物理机制。然而,我们证明了摩擦力敏感地取决于电子速度分布函数的形状,从而构成了完全自我一致的挑战,其流体模拟中异常输送的第一原理建模。通过AIP发布在许可证下发布。

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  • 来源
    《Physics of plasmas》 |2020年第6期|共15页
  • 作者单位

    Sorbonne Univ Ecole Polytech CNRS Lab Phys Plasmas F-91128 Palaiseau France;

    PlasmaPotential Phys Consulting &

    Res Canberra ACT 2601 Australia;

    Sorbonne Univ Ecole Polytech CNRS Lab Phys Plasmas F-91128 Palaiseau France;

    Sorbonne Univ Ecole Polytech CNRS Lab Phys Plasmas F-91128 Palaiseau France;

    Sorbonne Univ Ecole Polytech CNRS Lab Phys Plasmas F-91128 Palaiseau France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 蛋白质;
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