极低地球轨道上以原子氧为燃料的离子推进器的等离子体羽流模拟

Geonwoong Moon, Wonho Choe, Eunji Jun
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摘要

作为大气层呼吸电推进器(ABEP)的简化,对原子供氧(AO-feed)离子推进器的等离子体羽流进行了数值研究。预测分析的重点是极低地球轨道(VLEO)中的离子回流现象和羽流-背景相互作用。计算框架采用了两种相继集成的数值方法:射频离子推进器的零维(0-D)分析模型以及粒子入胞(PIC)和直接模拟蒙特卡罗(DSMC)技术的混合方法。0-D 分析模型用于预测排气条件,而 PIC-DSMC 混合方法则采用这些预测结果来进行等离子体羽流模拟。引入了通用碰撞截面模型,以便对 VLEO 大气中的 AO 和氙推进剂进行一致的动力学模拟。等离子体羽流模拟在轴对称域中进行,包括一个圆柱形卫星体,以考虑尾流。排出的离子表现出横向于离子束方向的扩散输运,这意味着离子逆流。在 AO 供能推进器中,逆流离子电流密度可以增加,而这种推进器需要较高的推进剂流速才能获得实际推力。与传统的氙推进器相比,AO-馈源离子推进器的等离子体羽流与 VLEO 大气层之间的相互作用更为活跃。增强的羽流-背景相互作用改变了回流离子电流密度和单个离子的动能,这些因素与航天器的表面污染有关。
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Plasma plume simulation of an atomic oxygen-fed ion thruster in very-low-earth-orbit
The plasma plume flow of an atomic oxygen-fed (AO-fed) ion thruster is numerically investigated as a simplification of the atmosphere-breathing electric propulsion (ABEP). A predictive analysis is conducted focusing on the ion backflow phenomenon and plume-background interaction in very-low-earth-orbit (VLEO). The computational framework employs two sequentially integrated numerical methods: a zero-dimensional (0-D) analytical model for the radio-frequency ion thruster and a hybrid method of the particle-in-cell (PIC) and direct simulation Monte Carlo (DSMC) techniques. The 0-D analytic model is employed for the prediction of exhaust conditions, while the hybrid PIC-DSMC method adopts these predictions to conduct the plasma plume simulations. A generalized collision cross-section model is introduced to enable consistent kinetic simulations for both AO and xenon propellants in VLEO atmosphere. The plasma plume simulations are conducted in an axisymmetric domain, including a cylindrical satellite body to consider wake flow. The exhaust ions exhibit diffusive transport transverse to the ion beam direction, implying the ion backflow. The backflowing ion current density can be increased in AO-fed thrusters, which require a high propellant flow rate to achieve a practical thrust. The AO-fed ion thruster shows a more active interaction between its plasma plume and the VLEO atmosphere compared to conventional xenon-based thrusters. The intensified plume-background interaction modifies the backflowing ion current density and the kinetic energy of individual ions, factors related to the spacecraft's surface contamination.
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