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Ion properties in a Hall current thruster operating at high voltage

机译:霍尔电流推进器在高压下的离子性质

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Operation of a 5 kW-class Hall current Thruster for various voltages from 400 V to 800 V and a xenon mass flow rate of 6mg s~(-1)have been studied with a quasi-neutral hybrid model. In this model, anomalous electron transport is fitted from ion mean velocity measurements, and energy losses due to electron-wall interactions are used as a tuned parameter to match expected electron temperature strength for same class of thruster. Doubly charged ions production has been taken into account and detailed collisions between heavy species included. As the electron temperature increases, the main channel of Xe~(2+) ion production becomes stepwise ionization of Xe~+ ions. For an applied voltage of 800 V, the mass utilization efficiency is in the range of 0.8-1.1, and the current fraction of doubly charged ions varies between 0.1 and 0.2. Results show that the region of ion production of each species is located at the same place inside the thruster channel. Because collision processes mean free path is larger than the acceleration region, each type of ions experiences same potential drop, and ion energy distributions of singly and doubly charged are very similar.
机译:使用准中性混合模型研究了5 kW级霍尔电流推力器在400 V至800 V的各种电压和氙质量流量为6mg s〜(-1)的情况下的运行情况。在此模型中,通过离子平均速度测量拟合了异常电子传输,并且由于电子-壁相互作用而产生的能量损失被用作调整参数,以匹配相同类型推进器的预期电子温度强度。已考虑到双电荷离子的产生,并包括了重离子之间的详细碰撞。随着电子温度的升高,Xe〜(2+)离子产生的主要通道变成Xe〜+离子的逐步电离。对于800 V的施加电压,质量利用效率在0.8-1.1的范围内,并且双电荷离子的电流分数在0.1到0.2之间变化。结果表明,每种物质的离子产生区域位于推进器通道内的同一位置。因为碰撞过程意味着自由路径大于加速区域,所以每种类型的离子都会经历相同的电势下降,并且单电荷和双电荷的离子能量分布非常相似。

著录项

  • 来源
    《Journal of Applied Physics 》 |2016年第16期| 163305.1-163305.7| 共7页
  • 作者

    L. Garrigues;

  • 作者单位

    LAPLACE, Universite de Toulouse, CNRS, INPT, UPS, France;

  • 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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