Liu Feng, Wang Wenchun, Zheng Wei, Wang Younian
State Key Laboratory of Materials Modification by Laser, Ion and Electron Beams, Dalian University of Technology, Dalian 116024, PR China.
Spectrochim Acta A Mol Biomol Spectrosc. 2008 Mar;69(3):776-81. doi: 10.1016/j.saa.2007.04.033. Epub 2007 May 21.
Optical emission spectroscopy has been applied to study the spatially resolved measurements of the emission intensities of OH (A(2)Sigma-->X(2)Pi, 0-0) and N(2)(+) (B(2)Sigma(u)(+)-->X(2)Sigma(g)(+), 0-0, 391.4 nm) produced by a high-voltage positive pulsed streamer discharge consisting of a gas mixture of N(2) and H(2)O in a wire-plate reactor under severe electromagnetic interference at atmospheric pressure. The effects of pulse peak voltage, pulse repetition rate, and the added O(2) flow rate on the spatial distributions of the emission intensity of OH (A(2)Sigma-->X(2)Pi, 0-0) and N(2)(+) (B(2)Sigma(u)(+)-->X(2)Sigma(g)(+), 0-0, 391.4 nm) in the lengthwise direction (direction from wire to plate) are investigated. It has been found that the emission intensities of OH (A(2)Sigma-->X(2)Pi, 0-0) and N(2)(+) (B(2)Sigma(u)(+)-->X(2)Sigma(g)(+), 0-0, 391.4 nm) rise with an increase in both pulse peak voltage and pulse repetition rate and decrease with an increase in oxygen flows added in an N(2) and H(2)O gas mixture. The emission intensity of OH (A(2)Sigma-->X(2)Pi, 0-0) decreases with increasing the distance from the wire electrode. The emission intensity of N(2)(+) (B(2)Sigma(u)(+)-->X(2)Sigma(g)(+), 0-0, 391.4 nm) is nearly constant at 0-4mm from wire electrode, and sharply increases near the ground electrode. The vibrational temperature of N(2) (C) increases with increasing O(2) flows and keeps almost constant in the lengthwise direction under the present experimental conditions. The main physicochemical processes involved are also discussed in this paper.
光学发射光谱已被用于研究在大气压下、强电磁干扰环境中,线 - 板式反应器内由氮气(N₂)和水(H₂O)的气体混合物产生的高压正脉冲流光放电所产生的OH(A²Σ→X²Π,0 - 0)和N₂⁺(B²Σᵤ⁺→X²Σg⁺,0 - 0,391.4 nm)发射强度的空间分辨测量。研究了脉冲峰值电压、脉冲重复率以及添加的氧气流量对沿纵向(从线到板的方向)OH(A²Σ→X²Π,0 - 0)和N₂⁺(B²Σᵤ⁺→X²Σg⁺,0 - 0,391.4 nm)发射强度空间分布的影响。研究发现,OH(A²Σ→X²Π,0 - 0)和N₂⁺(B²Σᵤ⁺→X²Σg⁺,0 - 0,391.4 nm)的发射强度随着脉冲峰值电压和脉冲重复率的增加而升高,随着在N₂和H₂O气体混合物中添加氧气流量的增加而降低。OH(A²Σ→X²Π,0 - 0)的发射强度随着与线电极距离的增加而降低。N₂⁺(B²Σᵤ⁺→X²Σg⁺,0 - 0,391.4 nm)的发射强度在距离线电极0 - 4mm处几乎保持恒定,而在接地电极附近急剧增加。在当前实验条件下,N₂(C)的振动温度随着氧气流量的增加而升高,并且在纵向方向上几乎保持恒定。本文还讨论了其中涉及的主要物理化学过程。