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Magnet Configuration and Experimental Analysis of Helicon Source for Space Magnetoplasma Propulsion

机译:空间磁等离子体推进器的螺旋结构和螺线源实验分析

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The Variable Specific Impulse Magnetoplasma Rocket (VASIMR) is one of the high performance electric propulsion devices for future interplanetary applications. Helicon sources can produce high-density plasmas with high-ionization efficiency suitable for VASIMR, which usually use two electromagnets to produce the required magnetic field configuration. How to optimal design the solenoids and how to create the requisite B-field are the key factors to affect the characteristics and performance of the helicon plasma. In this paper, the magnets were designed and fabricated, and an experimental helicon source was presented. Two solenoids situated around the cylindrical quartz tube were used to create an expanding magnetic field of about 250 G in the center decreasing to a few tens of Gauss in the downstream diffusion region. The antenna was powered by a radio-frequency (RF) system of 13.56 MHz, which maximum changeable power is 500 W. Our helicon device was installed with vacuum chamber that is pumped down to a base pressure of about 0.001 Pa using cryopumps. Langmuir probe is mounted on to measure the plasma parameters. It is found that, when increasing the radio-frequency power or varying the magnetic field, both the plasma density and operating mode of helicon-wave ion are also changed. Permanent magnets (PM) and High temperature superconducting (HTS) magnets are also considered to use in the helicon source, and relative analyses are discussed. The details of further research are to investigate the relationship that the applied magnets affect on the efficiency and performance of the helicon plasma.
机译:变比冲激磁浆火箭(VASIMR)是用于未来行星际应用的高性能电推进装置之一。螺线管源可以产生适合VASIMR的具有高电离效率的高密度等离子体,VASIMR通常使用两个电磁体来产生所需的磁场配置。如何优化螺线管的设计以及如何创建必要的B场是影响螺线管等离子体特性和性能的关键因素。本文设计并制造了磁体,并提出了实验性的螺旋源。位于圆柱形石英管周围的两个螺线管用于在中心产生约250 G的扩展磁场,并在下游扩散区域减小到几十高斯。天线由13.56 MHz的射频(RF)系统供电,最大可变功率为500W。我们的Helicon设备安装了真空室,使用低温泵将真空室抽至约0.001 Pa的基本压力。 Langmuir探头安装在上面以测量血浆参数。已经发现,当增加射频功率或改变磁场时,等离子体密度和螺旋波离子的工作模式也会改变。螺旋源中也考虑使用永磁(PM)和高温超导(HTS)磁体,并讨论了相关分析。进一步研究的细节是研究施加的磁体对螺旋等离子体效率和性能的影响。

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