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Nitrogen dissociation degree in a helicon plasma source inferred from microwave interferometry and langmuir probe cross measurements

机译:从微波干涉测量和Langmuir探针交叉测量推断出直升离子等离子体源中的氮解离程度

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Summary form only given. Using the compact helicon waves and instabilities experiment (CHEWIE) device we present a method of calculation of nitrogen dissociation degree in a helicon generated plasma by microwave interferometry and Langmuir probe measurements. The dependencies of nitrogen dissociation degree on external source parameters: input power, gas pressure and magnetic field strength are also presented. The nitrogen plasma is generated in CHEWIE helicon plasma source, which consists of a 12 cm long, 6 cm diameter Pyrex tube concentrically connected to a stainless steel expansion chamber, 30 cm long, 15 cm in diameter. The helicon antenna is a water cooled, 7 cm long Boswell saddle antenna that can handle up to 600 W of RF power over the frequency range 3 to 28 MHz. Helicon waves are generated with the help of an external magnetic field (up to 1200 G) from three electromagnets that surround the Pyrex tube. The radially averaged electron plasma density is determined by the phase shift of a 94 GHz microwave signal passing through the bulk plasma with respect to "plasma off" signal. The magnitude of total phase shift is a fraction of the wavelength. Instead of counting fringes we use the phase lock-loop functionality of the millimeter wave source to actively change the frequency during the "plasma on" time to match the interference signal of the "plasma off" time. With sufficient bandwidth in the feedback circuit this allows us to monitor any afterglow effects in the plasma in pulsed operating mode. Complementary measurements of the plasma density are accomplished with a RF compensated, cylindrical Langmuir probe. The probe consists of 0.5-mm-diam graphite rod shielded by an alumina tube. The effective collecting length of the tip is 3 mm. A series of RF filters are used to suppress interference from the helicon source in the 3-28 MHz range. Magnetic field effects on the probe characteristic are accounted by probe calibration through comparisons with microwave me-asurements in argon plasma
机译:摘要表格仅给出。使用紧凑的Helicon波和稳定性试验(Chewie)器件我们通过微波干涉测量和Langmuir探针测量来介绍螺旋生成等离子体中的氮解离程度的方法。还介绍了外源参数的氮离解程度:输入功率,气体压力和磁场强度。氮等离子体在咀螺钉等离子体源中产生,其由12cm长的6cm直径的热速管组成,同心地连接到不锈钢膨胀室,长度为15cm,直径为15厘米。 Helicon天线是一种水冷,7厘米长的Boswell鞍天线,可以在3至28MHz的频率范围内处理高达600W的RF功率。通过从围绕Pyrex管的三个电磁铁的外部磁场(高达1200g)的帮助产生直升光波。径向平均的电子等离子体密度由相对于“等离子体OFF”信号通过体积等离子体的94GHz微波信号的相移确定。总相移的大小是波长的一部分。代替计数FRINES我们使用毫米波源的相位锁环功能来主动改变“等离子体上”时间期间的频率以匹配“等离子体关闭”时间的干扰信号。在反馈电路中具有足够的带宽,这允许我们在脉冲操作模式下监测等离子体中的任何余辉效果。通过RF补偿,圆柱形Langmuir探针完成等离子体密度的互补测量。探针由氧化铝管屏蔽的0.5毫米直径的石墨棒组成。尖端的有效收集长度为3毫米。一系列RF滤波器用于抑制3-28 MHz范围内从Helicon源的干扰。探针特性的磁场效应通过探针校准通过氩气等离子中的微波ME-Aturese进行比较来计算

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