论文标题

Hall推进器排放的无碰撞离子的14层最大透镜建模

14-moment maximum-entropy modelling of collisionless ions for Hall thruster discharges

论文作者

Boccelli, Stefano, McDonald, James G., Magin, Thierry E.

论文摘要

霍尔效应推进器中的离子通常以低碰撞性为特征。在存在加速场和方位角电场波的情况下,这会导致热力学平衡的巨大偏差,从而引入动力学效应。这项工作调查了14摩托最大渗透模型在此问题中的应用。该方法包括一组14个PDE,用于密度,动量,压力张量成分,热通量矢量和与粒子速度分布函数相关的第四阶矩。该模型应用于在类似Hall推进器的构型中研究无碰撞离子动力学的研究,并针对包括Vlasov动力学方程在内的不同模型进行了评估。考虑了三个测试用例:一个纯粹的轴向加速问题,离子波捕获的问题以及轴向齐路平面中离子的演变。 这项工作的大部分仅考虑离子,并且通过规定电场的合理值来消除与电子的耦合。这使我们能够在不同离子模型之间进行直接比较。但是,考虑到准中性或多流体模型,还简要讨论了运行自洽等离子体模拟的可能性。对于被考虑的测试用例,最大渗透系统似乎是强大而准确的选择。与更简单的无压气体模型(冷离子)和气体动力学的Euler方程相比,准确性的提高,而计算成本显示出远低于直接动力学模拟。

Ions in Hall effect thrusters are often characterized by a low collisionality. In the presence of acceleration fields and azimuthal electric field waves, this results in strong deviations from thermodynamic equilibrium, introducing kinetic effects. This work investigates the application of the 14-moment maximum-entropy model to this problem. This method consists in a set of 14 PDEs for the density, momentum, pressure tensor components, heat flux vector and fourth-order moment associated to the particle velocity distribution function. The model is applied to the study of collisionless ion dynamics in a Hall thruster-like configuration, and its accuracy is assessed against different models, including the Vlasov kinetic equation. Three test cases are considered: a purely axial acceleration problem, the problem of ion-wave trapping and finally the evolution of ions in the axial-azimuthal plane. Most of this work considers ions only, and the coupling with electrons is removed by prescribing reasonable values of the electric field. This allows us to obtain a direct comparison among different ion models. However, the possibility to run self-consistent plasma simulations is also briefly discussed, considering quasi-neutral or multi-fluid models. The maximum-entropy system appears to be a robust and accurate option for the considered test cases. The accuracy is improved over the simpler pressureless gas model (cold ions) and the Euler equations for gas dynamics, while the computational cost shows to remain much lower than direct kinetic simulations.

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