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Critical implications of ion-surface energy accommodation and neutralization mechanism in hollow cathode physics

机译:离子表面能量容纳和中和机理在空心阴极物理中的临界意义

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摘要

Self-heating thermionic hollow cathodes are essential components in modern plasma thrusters. To fully understand their operation, three interdependent physical domains must be considered: plasma discharge physics, thermal response of the cathode structure, and chemical evolution of plasma exposed surfaces. In this work, we develop the first self-consistently coupled plasma-thermal-chemical simulation platform for hollow cathode operation using lanthanum hexaboride (LaB_6) and Xe and study its performance against our experimentally determined temperature measurements. Results show that the customary assumptions of single-step resonant neutralization and full energy accommodation in ion-surface collisions fail to reproduce our empirical observations. We propose a two-step neutralization mechanism that consists of resonant neutralization to the first excited state of xenon followed by Auger de-excitation to the ground state, along with system specific accommodation factors. In this way, the agreement between the results of the simulations and experiments was achieved. These fundamental processes could govern neutralization in other cathode technologies where low work function emitters are employed and should therefore be accounted for in physical models. In addition, the new simulation platform allows us to better estimate the equilibrium work function of LaB_6 hollow cathode emitters. In the cathode studied here, we found that the effective work function is 2.25 eV, which is significantly lower than previous estimates, and leads to better than expected cathode material performance with important implications for space missions.
机译:自加热的热离子空心阴极是现代等离子推进重要组成部分。为了充分理解它们的操作,三个相互依存的物理域必须加以考虑:等离子体放电物理学中,阴极结构的热反应,以及暴露于等离子体的表面上的化学演化。在这项工作中,我们开发了使用六硼化镧(LaB_6)和Xe空心阴极操作的第一个自洽耦合等离子体热化学仿真平台,并针对我们的实验确定的温度测量研究其性能。结果表明,在离子表面碰撞单步谐振中和并充分能量住宿的习惯假设失败重现我们的经验观察。我们建议,由谐振中和到氙随后俄歇去激发到基态的第一激发态的,与系统的具体的住宿因子一起的两步骤中和机制。通过这种方式,达到了仿真和实验的结果之间的协议。这些基本过程可支配中和在低功函数的发射器被采用,因此应在物理模型来解释其他阴极技术。另外,新的模拟平台,使我们能够更好地估计LaB_6空心阴极发射器的平衡功函数。在这里学习的阴极,我们发现,有效功函数为2.25电子伏特,这比先前的估计显著降低,并导致比太空任务产生重要影响预计正极材料的性能更好。

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  • 来源
    《Journal of Applied Physics 》 |2021年第4期| 043306.1-043306.16| 共16页
  • 作者单位

    Department of Aerospace (GALCIT) California Institute of Technology Pasadena California 91001 USA UCLA Samueli School Of Engineering University of California Los Angeles California 90095 USA;

    Electric propulsion group Jet Propulsion Laboratory Pasadena California 91109 USA;

    Electric propulsion group Jet Propulsion Laboratory Pasadena California 91109 USA;

    Departamento de Fisica Teorica de la Materia Condensada Universidad Autonoma de Madrid and IFIMAC Cantoblanco Madrid E28049 Spain;

    Department of Aerospace (GALCIT) California Institute of Technology Pasadena California 91001 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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