Glow currents in a point-to-plane dielectric barrier discharge in the context of the chemical reactivity control

被引:20
作者
Petit, M [1 ]
Goldman, A
Goldman, M
机构
[1] SUPELEC Plateau Moulon, Serv Electrotech & Elect Ind, F-91192 Gif Sur Yvette, France
[2] Univ Paris 11, CNRS, SUPELEC,Equipe DEE, Phys Gaz & Plasmas Lab, F-91192 Gif Sur Yvette, France
关键词
D O I
10.1088/0022-3727/35/22/311
中图分类号
O59 [应用物理学];
学科分类号
摘要
This paper reports on the identification of the glow current components also called pseudo-continuous components associated to non-impulsive currents, in a point-to-plane dielectric barrier discharge (DBD) energized by a sinusoidal alternating high voltage. Thanks to a detailed analysis of both photographic and discharge current recordings, coupled to a close comparison with do corona behaviours, the existence of both positive and negative glow discharges in DBDs is evidenced. The negative glow current can represent the major part of the current in the negative alternation. The relatively low amplitudes of the glow currents (similar to0.1-1 mA), compared to streamers pulses amplitudes, often make them quite difficult to detect although they often represent more than 50% of the power delivered to the discharge cell. Discharge photographs taken with a fast camera demonstrate that the negative glow (in the negative alternation of the voltage) can, for high voltage levels, extend across the whole gaseous gap with higher current amplitudes than in do coronas and without any spark breakdown risks. Thus, the ionization and thermal phenomena identified under negative do corona may play a more important role in the DBD chemical reactivity, besides the streamer type discharges, in particular through their influence on the gas temperature and chemical species profiles in and out of the discharge volume; this last point is evoked in the discussion closing the paper.
引用
收藏
页码:2969 / 2977
页数:9
相关论文
共 11 条
[1]  
BUCHET G, 1966, CR ACAD SCI B PHYS, V263, P356
[2]   Chemical kinetics with electrical and gas dynamics modelization for NOx removal in an air corona discharge [J].
Eichwald, O ;
Guntoro, NA ;
Yousfi, M ;
Benhenni, M .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2002, 35 (05) :439-450
[3]  
GOLDMAN A, 1992, 10 INT C GAS DISCH T, P270
[4]  
JONES JE, 1997, 12 INT C GAS DISCH T, P149
[5]   PULSELESS CORONA IN NEGATIVE POINT TO PLANE GAP [J].
KONDO, Y ;
MIYOSHI, Y .
JAPANESE JOURNAL OF APPLIED PHYSICS, 1978, 17 (04) :643-649
[6]   NEGATIVE DC CORONA STUDY IN ATMOSPHERIC AIR USING SCHLIEREN AND INTERFEROMETRIC TECHNIQUES [J].
KURIMOTO, A ;
FARISH, O .
IEE PROCEEDINGS-A-SCIENCE MEASUREMENT AND TECHNOLOGY, 1980, 127 (02) :89-94
[7]  
MARODE E, 1999, J ADV OXID TECHNOL, V4, P1
[8]  
MIYOSHI Y, 1965, ELECTRICAL CORONAS, P383
[9]   Electrical characterization of gas discharges using a numerical treatment. Application to dielectric barrier discharges [J].
Petit, M ;
Jidenko, N ;
Goldman, A ;
Goldman, M ;
Borra, JP .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2002, 73 (07) :2705-2712
[10]  
Sigmond R. S., 1982, Seventh International Conference on Gas Discharges and their Applications, P140