低压空气极小等离子喷嘴出口后N2 2+带的辐射特性

健二 澁澤, 賢人 舩津, 紘行 白井, 聖子 久保田
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引用次数: 0

摘要

在31.3 kpa和5.3kPa的压力下,通过直径0.7mm的喷嘴产生长度为10mm的低压空气微等离子体。在距喷嘴出口0.5mm的中轴线处进行光谱测量。在280 ~ 420nm波长范围内以N2+ 1-和N2+带为主,且带的形状几乎与压力无关。用光谱匹配法测定温度,发现等离子体处于热非平衡状态,振动温度远高于旋转温度。利用平衡辐射理论重建了实验强度分布,除大气微等离子体中v′≥2的N2 +波段外,其他均与大气微等离子体的实验强度分布吻合较好。对于这些谱带,在理论中考虑了预解离和N2C3Πu态的非玻尔兹曼转动居群分布的影响,得到了更好的一致性。讨论了低温下N2 +的振动温度高、实验带形与理论带形差异小的可能原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
低圧空気極小プラズマジェットのノズル出口直後における N2 2+バンドの放射特性
Low-pressure air micro-plasmajets with a length of 10mm were generated through a nozzle with a diameter of 0.7mm at the pressures of 31.3 and 5.3kPa. Spectroscopic measurements were conducted at the point of 0.5mm from the nozzle exit on the central axis. The N2+ 1- and N2 2+ bands were predominant in the wavelength region of 280 to 420nm and the band shape was almost independent of the pressure. From temperature determination by a spectral matching method, it was found that the plasmajets were in a thermal nonequilibrium state and that vibrational temperature was much higher than rotational one. The experimental intensity distribution was reconstructed by the equilibrium radiation theory, in good agreement except for the N2 2+ bands with v′ ≥ 2 as in case of atmospheric air micro-plasmajet. For these bands, much better agreement was obtained by taking the effects of predissociation and non-Boltzmann rotational population distribution for N2C3Πu state into consideration in the theory. Discussions were made about potential cause of high vibrational temperature and slight difference between experimental and theoretical band shapes of the N2 2+ bands at the low-pressures.
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