CARS Diagnostic and Modeling of a Dielectric Barrier Discharge

被引:0
作者
M. Baeva
A. Dogan
J. Ehlbeck
A. Pott
J. Uhlenbusch
机构
[1] Heinrich-Heine-Univerisität,Institut für Laser
[2] Institut für Niedertemperatur-Plasmaphysik e.V., und Plasmaphysik
来源
Plasma Chemistry and Plasma Processing | 1999年 / 19卷
关键词
Dielectric barrier discharge; CARS on N; and NO; NO reduction; chemical and vibrational kinetics; modeling;
D O I
暂无
中图分类号
学科分类号
摘要
Dielectric barrier discharges (DBD) with planar- and knife-shaped electrodes are operated in N2O2NO mixtures under a pressure of 20 and 98 kPa. They are excited by means of consecutive unipolar or bipolar high-voltage pulse packages of 10 kV at a pulse repetition rate of 1 and 2 kHz. The rotational and vibrational excitation of N2molecules and the reduction of nitric oxide (NO) in the discharge have been investigated using coherent anti-Stokes Raman scattering (CARS) technique. Rotational (gas) temperatures near the room temperature and vibrational temperatures of about 800 K at atmospheric pressure and 1400 K at a pressure of 20 kPa are observed. Therefore, chemical reactions of NO with vibrationally excited N2are probably insignificant. One-dimensional kinetic models are developed that balance 35 chemical reactions between 10 species and deliver equations for the population density of excited vibrational levels of N2together with a solution of the Boltzmann equation for the electrons. A good agreement between measured vibrational temperatures of N2, the concentration of NO, and calculated data is achieved. Modeling of the plasma discharge verifies that a DBD operated with a N2NO mixture reduces the NO content, the simultaneous presence of O2, already 1%, is enough to prevent the NO reduction.
引用
收藏
页码:445 / 466
页数:21
相关论文
共 84 条
[1]  
Zeldovich J.(1946)The Reduction of Nitric Oxide by Activated Nitrogen from High Pressure Plasma Jets Acta Phys. Chim. 21 577-undefined
[2]  
Penetrante B. M.(1995)undefined IEEE Trans. Plasma Sci. 23 679-undefined
[3]  
Hsiao M. C.(1996)undefined Appl. Phys. Lett. 68 3719-undefined
[4]  
Merritt B. T.(1994)undefined Bundesdeutsche Fachtagung Plasmatechnologie (Wuppertal, Germany) 6 109-undefined
[5]  
Vogtlin G. E.(1995)undefined IEEE Trans. Plasma Sci. 23 661-undefined
[6]  
Wallman P. H.(1993)undefined NATO-ASI Ser. G 34 273-undefined
[7]  
Penetrante B. M.(1995)undefined J. Appl. Phys. 78 2074-undefined
[8]  
Hsiao M. C.(1981)undefined Progr. Quant. Electr. 7 1-undefined
[9]  
Merritt B. T.(1978)undefined Appl. Phys. Lett. 32 421-undefined
[10]  
Vogtlin G. E.(1997)undefined Appl. Spectrosc. 51 1360-undefined