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用于在低密度条件下进行时间分辨等离子体测量的便携式汤姆逊散射系统。

Portable Thomson scattering system for temporally resolved plasma measurements under low density conditions.

作者信息

Yamamoto N, Yalin A P

机构信息

Department of Interdisciplinary Engineering Sciences, Kyushu University, Kasuga 816-8580, Japan.

Department of Mechanical Engineering, Colorado State University, Fort Collins, Colorado 80524, USA.

出版信息

Rev Sci Instrum. 2024 Mar 1;95(3). doi: 10.1063/5.0180534.

Abstract

We present the development of a portable Thomson scattering diagnostic system allowing simultaneous spatially and temporally resolved plasma property measurements for low density plasmas. The setup uses a compact pulsed Nd:YAG laser (532 nm) as the light source with suppression by two volume Bragg grating notch filters and dispersion with a single-stage spectrometer before measurement with an intensified camera. A key issue is the detailed light collection and how it impacts the sensitivity and elastic light suppression, for which we have investigated two optical configurations, one based on a 7 × 1 linear fiber bundle and the other based on a slit spatial-filter. We find that the configuration with the slit spatial-filter provides a higher sensitivity by a factor of ∼2 along with more uniform spatial response. We have developed a custom pulsed-plasma setup with a modulation at 20 kHz, representative of the Hall thruster breathing mode oscillation, to show the possibility of temporally resolved measurements for electric propulsion applications. We have successfully recorded the variations in electron number density and temperature with sub-mm spatial resolution and capturing ten temporal points over the 50 µs modulation period. The detection limit of electron density (with the spatial-filter configuration) is ∼1.6 × 1017 m-3, which is ∼1/10 of the plasma density in the acceleration channel of Hall thrusters.

摘要

我们展示了一种便携式汤姆逊散射诊断系统的开发,该系统能够对低密度等离子体进行空间和时间分辨的等离子体特性同时测量。该装置使用紧凑的脉冲Nd:YAG激光器(532纳米)作为光源,通过两个体布拉格光栅陷波滤波器进行抑制,并在使用增强型相机测量之前,通过单级光谱仪进行色散。一个关键问题是详细的光收集以及它如何影响灵敏度和弹性光抑制,为此我们研究了两种光学配置,一种基于7×1线性光纤束,另一种基于狭缝空间滤波器。我们发现,带有狭缝空间滤波器的配置提供了约2倍的更高灵敏度以及更均匀的空间响应。我们开发了一种定制的脉冲等离子体装置,其调制频率为20千赫兹,代表霍尔推力器呼吸模式振荡,以展示在电推进应用中进行时间分辨测量的可能性。我们已经成功地以亚毫米空间分辨率记录了电子数密度和温度的变化,并在50微秒调制周期内捕获了十个时间点。电子密度的检测极限(采用空间滤波器配置)约为1.6×10^17立方米^-3,这约为霍尔推力器加速通道中等离子体密度的1/10。

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