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首页> 外文期刊>Journal of propulsion and power >Hall-Effect Thruster-Cathode Coupling, Part II: Ion Beam and Near-Field Plume
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Hall-Effect Thruster-Cathode Coupling, Part II: Ion Beam and Near-Field Plume

机译:霍尔效应推进器-阴极耦合,第二部分:离子束和近场羽流

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This is the second part of a two-part paper in which the effect of cathode position and magnetic field configuration on Hall-effect thruster performance is explored. The effect magnetic field topology has on the coupling between a Hall-effect thruster and its cathode has been studied. With two Hall-effect thruster configurations, each with a different external field topology, the cathode is positioned across a range of radial distances and the effect on performance, ion beam, and near-field plasma is investigated. The importance of the magnetic field separatrix, a surface which divides the magnetic field lines into "internal" and "external" regions, is shown. In particular, total efficiency improvements of up to seven percentage points are seen when placing the cathode near the separatrix as opposed to locations further away of the thruster. Analysis of the thruster telemetry, ion beam current distribution, and ion energy distribution functions properties show the effect of the cathode position on the efficiency loss mechanisms of beam divergence, current utilization, ion velocity distribution, voltage utilization, and cathode coupling. Measurements of near-field plasma potential, electron temperature, and electron density provide help to explain why these efficiency improvements come about and add insight into the cathode coupling processes. As the cathode is moved radially away from the thruster up to 250 mm, the cathode coupling efficiency decreases by up to 10 percentage points. Furthermore, the near-field plasma potential increases by up to 30 V, and this is correlated with a decrease in beam divergence efficiency of up to 15 percentage points.
机译:这是两部分论文的第二部分,其中探讨了阴极位置和磁场配置对霍尔效应推进器性能的影响。已经研究了磁场拓扑结构对霍尔效应推进器与其阴极之间的耦合的影响。使用两种霍尔效应推进器配置,每种配置具有不同的外部场拓扑结构,将阴极放置在一定范围的径向距离上,并研究其对性能,离子束和近场等离子体的影响。示出了将磁场线分为“内部”和“外部”区域的表面磁场分布的重要性。尤其是,将阴极放置在靠近隔膜的位置(而不是远离推进器的位置)时,总效率提高了七个百分点。对推进器遥测,离子束电流分布和离子能量分布函数属性的分析表明,阴极位置对束发散,电流利用,离子速度分布,电压利用和阴极耦合的效率损失机制的影响。近场等离子体电势,电子温度和电子密度的测量有助于解释为什么会出现这些效率提高,并有助于深入了解阴极耦合过程。当阴极沿径向远离推进器移动达250 mm时,阴极耦合效率最多下降10个百分点。此外,近场等离子体电势增加高达30 V,这与光束发散效率降低高达15个百分点相关。

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