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Characterization of a Microwave-Induced Atmospheric-Pressure Ar–N2 Plasma Pencil

机译:微波诱导的大气压Ar–N2等离子铅笔的表征

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A microwave-induced atmospheric-pressure plasma pencil was developed with an Ar–N2 gas mixture supplied to a coaxial transmission line. High-frequency simulation showed sufficient high electric field at the tip of the inner conductor, which resulted to automatic plasma ignition and a stable operation. The dependence of the characteristics of the plasma pencil from Ar and N2 gas flow rates was extensively studied. At moderate Ar gas flow rates, the plasma pencil can be operated at several tens of watts to achieve a near room-temperature and centimeter-long Ar–N2 plasma plume with OH and NO radicals as active species. Optical emission spectroscopy was also used to determine the vibrational and rotational temperatures of the plasma pencil. The vibrational temperature of N2 from the second positive system (2PS) can be obtained at moderate gas flow rates, since there was a good linear fitting with the Boltzmann distribution. At these gas flow rates, the vibrational and rotational temperatures of N2 from 2PS were found to be 0.42 and 0.29 eV, respectively.
机译:微波诱导的大气压等离子体笔是用Ar-N2气体混合物提供给同轴传输线开发的。高频仿真显示在内导体尖端处有足够高的电场,这导致自动等离子体点火和稳定运行。广泛研究了Ar和N2气体流速对等离子笔特性的依赖性。在中等Ar气体流速下,等离子笔可在几十瓦特的功率下工作,以达到接近室温和厘米长的Ar–N2等离子羽流,并带有OH和NO自由基作为活性物质。发射光谱也被用于确定等离子笔的振动和旋转温度。由于存在与玻耳兹曼分布的良好线性拟合,因此可以在中等气体流速下从第二正系统(2PS)获得N2的振动温度。在这些气体流速下,发现2PS产生的N2的振动和旋转温度分别为0.42和0.29 eV。

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