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Plasma spectroscopic diagnostic tool using collisional-radiative models and its application to different plasma discharges for electron temperature and neutral density determination.

机译:使用碰撞辐射模型的等离子体光谱诊断工具及其在不同等离子体放电中用于电子温度和中性密度测定的应用。

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A spectroscopic diagnostic tool has been developed to determine the electron temperature and the neutral density in helium, hydrogen and argon plasmas from absolutely calibrated spectroscopic measurements. For each gas, a method of analysis which uses models specific to each species present in the plasma (neutral atom or singly ionized atom) has been defined. The experimental electron density is used as an input parameter to the models, and the absolutely calibrated spectroscopic data are processed beforehand to obtain the populations of the upper excited levels corresponding to the observed spectral lines.; For helium plasmas, the electron temperature is inferred from the experimental helium ion excited level p = 4 population using a corona model, and then the neutral density is determined from the experimental helium neutral excited level populations using a collisional-radiative model for helium neutrals. For hydrogen plasmas, combinations of the electron temperature and the neutral density are determined from the experimental hydrogen neutral excited level populations using a collisional-radiative model specific to hydrogen atoms. For argon plasmas, the electron temperature is inferred from the experimental argon ion excited level populations using a collisional-radiative model for argon ions, and then the neutral density is determined from the experimental argon neutral excited level populations using a collisional-radiative model for argon neutrals.; This diagnostic tool was applied to three experiments with different geometries and plasma conditions to test the validity of each data analysis method. The helium and hydrogen data analysis methods were tested and validated on helium and hydrogen plasmas produced in the VASIMR experiment, a plasma propulsion system concept. They gave electron temperatures and neutral densities that were consistent with other diagnostics and theory. The argon diagnostic tool was tested on argon plasmas produced in the VASIMR experiment, the Helimak experiment and the Helicon experiment. The electron temperature and neutral density obtained on both the Helimak and the Helicon experiments were consistent with other diagnostics and with theory, and validated the method of analysis. An impurity problem on the VASIMR experiment made it difficult for the data analysis to be validated.
机译:已经开发出一种光谱诊断工具,用于从绝对校准的光谱测量中确定氦,氢和氩等离子体中的电子温度和中性密度。对于每种气体,已经定义了一种分析方法,该方法使用特定于等离子体中存在的每种物质(中性原子或单电离原子)的模型。实验电子密度被用作模型的输入参数,并且事先处理了绝对校准的光谱数据以获得对应于观察到的谱线的较高激发能级的总体。对于氦等离子体,使用电晕模型从实验氦离子激发能级p = 4群体推断出电子温度,然后使用氦中性离子的碰撞辐射模型从实验氦中性激发能级群体确定中性密度。对于氢等离子体,使用特定于氢原子的碰撞辐射模型,根据实验性氢中性激发能级总体确定电子温度和中性密度的组合。对于氩等离子体,使用氩离子碰撞辐射模型从实验氩离子激发能级总体推断电子温度,然后使用氩辐射碰撞模型从实验氩中性激发能级总体确定中性密度中立。该诊断工具被应用于具有不同几何形状和等离子体条件的三个实验,以测试每种数据分析方法的有效性。氦气和氢气数据分析方法在VASIMR实验(一种等离子体推进系统概念)中产生的氦气和氢气等离子体上进行了测试和验证。他们给出的电子温度和中性密度与其他诊断和理论一致。在VASIMR实验,Helimak实验和Helicon实验中产生的氩等离子体上测试了氩诊断工具。在Helimak和Helicon实验中获得的电子温度和中性密度与其他诊断方法和理论一致,并验证了分析方法。 VASIMR实验中存在杂质问题,因此难以验证数据分析。

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