Improvement of Microwave Discharge Ion Thruster Using Antennas for Uniform and Dense Plasma Production

N. Yamamoto, M. Miyoshi, H. Masui, Takashi Miyamoto, Nobutaka Munesada, H. Nakashima
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引用次数: 1

Abstract

The dependency of thrust performance on thruster configurations such as antenna length, antenna height, number of antenna, magnetic field configuration, and microwave frequency, was investigated with the objective of improving the thrust performance of microwave discharge ion thruster using antennas for uniform and dense plasma production. The experimental results showed that there was an optimum length of the antennas, and it was 3/4 times the wave length of incident microwaves. The ion beam current reaches its maximum value when the antenna was set at 2mm downstream of an electron cyclotron resonance layer. There was an optimum number of the antennas. This is due to the tradeoff between the coupling of plasma with microwave and the surface recombination on the antenna. The expansion of ionization zone was made successfully by changing magnetic field configuration. In addition, the thrust performance was slightly improved with increase in incident microwave frequency from 2.45GHz to 4.2GHz. A value for the ion beam current with 2.45GHz is compensated by high electron number density and less magnetized ions for the disadvantage of small plasma number density. Overall, the propellant utilization efficiency, ion production cost, and estimated thrust were found to be 0.62, 300W/A and 6.2mN, respectively at mass flow rate of 0.22mg/s for xenon, ion beam voltage of 1,500V and 2.45GHz microwave incident power at 32W.
天线微波放电离子推力器在均匀致密等离子体生产中的改进
研究了天线长度、天线高度、天线数量、磁场结构和微波频率对微波放电离子推力器推力性能的影响,以提高微波放电离子推力器的推力性能。实验结果表明,天线的最佳长度为入射微波波长的3/4倍。当天线设置在电子回旋共振层下游2mm处时,离子束电流达到最大值。天线的最佳数量是存在的。这是由于等离子体与微波的耦合和天线表面复合之间的权衡。通过改变磁场结构,成功地扩大了电离区。此外,当微波频率从2.45GHz增加到4.2GHz时,推力性能略有改善。离子束电流为2.45GHz时,由于等离子体数密度小,可以用较高的电子数密度和较少的磁化离子来补偿。总体而言,在氙气质量流量为0.22mg/s、离子束电压为1500v、微波入射功率为32W时,推进剂利用效率为0.62、离子生产成本为300W/A、估算推力为6.2mN。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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