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Hall-effect thruster--Cathode coupling: The effect of cathode position and magnetic field topology.

机译:霍尔效应推进器-阴极耦合:阴极位置和磁场拓扑的影响。

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Hall-effect thruster (HET) cathodes are responsible for the generation of the free electrons necessary to initiate and sustain the main plasma discharge and to neutralize the ion beam. The position of the cathode relative to the thruster strongly affects the efficiency of thrust generation. However, the mechanisms by which the position affects the efficiency are not well understood. This dissertation explores the effect of cathode position on HET efficiency. Magnetic field topology is shown to play an important role in the coupling between the cathode plasma and the main discharge plasma. The position of the cathode within the magnetic field affects the ion beam and the plasma properties of the near-field plume, which explains the changes in efficiency of the thruster.;Several experiments were conducted which explored the changes of efficiency arising from changes in cathode coupling. In each experiment, the thrust, discharge current, and cathode coupling voltage were monitored while changes in the independent variables of cathode position, cathode mass flow and magnetic field topology were made. From the telemetry data, the efficiency of the HET thrust generation was calculated. Furthermore, several ion beam and plasma properties were measured including ion energy distribution, beam current density profile, near-field plasma potential, electron temperature, and electron density. The ion beam data show how the independent variables affected the quality of ion beam and therefore the efficiency of thrust generation. The measurements of near-field plasma properties partially explain how the changes in ion beam quality arise.;The results of the experiments show that cathode position, mass flow, and field topology affect several aspects of the HET operation, especially beam divergence and voltage utilization efficiencies. Furthermore, the experiments show that magnetic field topology is important in the cathode coupling process. In particular, the magnetic field separatrix plays a critical role in impeding the coupling between cathode and HET. Suggested changes to HET thruster designs are provided including ways to improve the position of the separatrix to accommodate the cathode.
机译:霍尔效应推进器(HET)阴极负责产生引发和维持主要等离子体放电并中和离子束所需的自由电子。阴极相对于推进器的位置强烈影响推进力产生的效率。但是,该位置影响效率的机制尚不清楚。本文探讨了阴极位置对HET效率的影响。磁场拓扑显示出在阴极等离子体和主放电等离子体之间的耦合中起重要作用。阴极在磁场中的位置会影响离子束和近场羽流的等离子体特性,这说明了推进器效率的变化。;进行了几次实验,探讨了由阴极变化引起的效率变化。耦合。在每个实验中,监测了推力,放电电流和阴极耦合电压,同时对阴极位置,阴极质量流量和磁场拓扑的自变量进行了更改。根据遥测数据,计算出HET推力产生的效率。此外,还测量了几种离子束和等离子体特性,包括离子能量分布,离子束电流密度分布,近场等离子体电势,电子温度和电子密度。离子束数据显示自变量如何影响离子束质量,从而影响推力产生的效率。近场等离子体特性的测量部分解释了离子束质量的变化是如何产生的。实验结果表明,阴极位置,质量流量和场拓扑会影响HET操作的多个方面,特别是束发散和电压利用率效率。此外,实验表明,磁场拓扑在阴极耦合过程中很重要。尤其是,磁场分离层在阻止阴极和HET之间的耦合方面起着至关重要的作用。提供了对HET推进器设计的建议更改,其中包括改善分隔线位置以容纳阴极的方法。

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