论文标题

磁性喷嘴中的动力学电子冷却:实验和建模

Kinetic Electron Cooling in Magnetic Nozzles: Experiments and Modeling

论文作者

Kim, June Young, Chung, Kyoung-Jae, Takahashi, Kazunori, Merino, Mario, Ahedo, Eduardo

论文摘要

由于长距离太空旅行需要具有更大操作灵活性和寿命的推进系统,因此对无电的等离子体推进器的兴趣越来越大,这提供了提高可伸缩性,更大的油门性能,在不同的推进剂上运行并限制设备侵蚀的机会。大多数无电极设计依赖于磁性喷嘴(MN)来加速等离子体,这具有利用扩展的电子来中和离子束而无需额外安装阴极的优势。 MN中的血浆膨胀几乎是无碰撞的,电子的流体描述需要非平凡的闭合关系。动力学电子效应,尤其是电子冷却,在各种物理现象(例如能量平衡,离子加速度和颗粒脱离)中起着至关重要的作用。基于为认识到这一重要性而进行的实验和理论研究,回顾了MNS和磁性等离子体的电子冷却机制的基本物理学。尤其是从动力学的角度讨论了最近的方法,我们对电子冷却的未来挑战和MN的相关物理主题的观点进行了讨论。

As long-distance space travel requires propulsion systems with greater operational flexibility and lifetimes, there is a growing interest in electrodeless plasma thrusters that offer the opportunity of improved scalability, larger throttleability, running on different propellants, and limit device erosion. The majority of electrodeless designs rely on a magnetic nozzle (MN) for the acceleration of the plasma, which has the advantage of utilizing the expanding electrons to neutralize the ion beam without the additional installation of a cathode. The plasma expansion in the MN is nearly collisionless, and a fluid description of electrons requires a non-trivial closure relation. Kinetic electron effects, and in particular electron cooling, play a crucial role in various physical phenomena such as energy balance, ion acceleration, and particle detachment. Based on the experimental and theoretical studies conducted in recognition of this importance, the fundamental physics of the electron cooling mechanism revealed in MNs and magnetically expanding plasma are reviewed. Especially, recent approaches from the kinetic point of view are discussed, and our perspective on the future challenges of electron cooling and the relevant physical subject of MN is presented.

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