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大气压空气等离子体羽的振动温度研究
引用本文:李雪辰,常媛媛,贾鹏英,赵欢欢,鲍文婷. 大气压空气等离子体羽的振动温度研究[J]. 光谱学与光谱分析, 2013, 33(7): 1754-1757. DOI: 10.3964/j.issn.1000-0593(2013)07-1754-04
作者姓名:李雪辰  常媛媛  贾鹏英  赵欢欢  鲍文婷
作者单位:河北大学物理科学与技术学院,河北省光电信息材料重点实验室,河北 保定 071002
基金项目:国家自然科学基金项目,河北省杰出青年基金项目,教育部科技研究重点项目,河北省自然科学基金资助项目,河北省教育厅优秀青年项目
摘    要:利用三电极介质阻挡放电装置,在大气压空气中产生了较大体积的等离子体羽。采用光学方法对该等离子体羽的特性进行了研究。发现随着外加电压峰值增加,每个外加电压周期的放电脉冲个数增加。通过采集等离子体羽的发射光谱,空间分辨地研究了放电等离子体羽的振动温度。结果表明等离子体羽的振动温度随着外加电压峰值的增加而减小;随着远离喷嘴的距离的增加,等离子体振动温度先增加后减小,当距离喷嘴5.4 mm时振动温度达到最高值。对上述现象进行了定性分析。研究结果对大气压空气等离子体羽在杀菌消毒等领域的应用具有重要意义。

关 键 词:等离子体羽  发射光谱  空间分辨  振动温度   
收稿时间:2012-11-15

Vibrational Temperature of Plasma Plume in Atmospheric Pressure Air
LI Xue-chen , CHANG Yuan-yuan , JIA Peng-ying , ZHAO Huan-huan , BAO Wen-ting. Vibrational Temperature of Plasma Plume in Atmospheric Pressure Air[J]. Spectroscopy and Spectral Analysis, 2013, 33(7): 1754-1757. DOI: 10.3964/j.issn.1000-0593(2013)07-1754-04
Authors:LI Xue-chen    CHANG Yuan-yuan    JIA Peng-ying    ZHAO Huan-huan    BAO Wen-ting
Affiliation:Key Laboratory of Photo-Electronics Information Materials of Hebei Province, College of Physics Science and Technology, Hebei University, Baoding 071002, China
Abstract:A tri-electrode discharge device was designed in a dielectric barrier discharge configurations to generate a fairly large volume plasma plume in atmospheric pressure air. The discharge characteristics of the plasma plume were investigated by an optical method. The discharge emission from the plasma plume was collected by a photomultiplier tube. It was found that the number of discharge pulse per cycle of the applied voltage increased with increasing the peak value of the applied voltage. The emission spectra of the plasma plume were collected by a spectrometer. The vibrational temperature was calculated by fitting the experimental data to the theoretical one. Results showed that the vibrational temperature of the plasma plume decreases with increasing the Up. Spatially resolved measurement of the vibrational temperature was also conducted on the plasma plume with the same method. Results showed that the vibrational temperature increases firstly and then decreases with increasing distance from the nozzle. The vibrational temperature reachs its maximum when the distance is 5.4 mm from the nozzle. These experimental phenomena were analyzed qualitatively based on the discharge theory. These results have important significance for the industrial applications of the plasma plume in atmospheric pressure air.
Keywords:Plasma plume  Optical emission spectrum  Spatially resolved measurement  Vibrational temperature
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