Corona-glow transition in the atmospheric pressure RF-excited plasma needle

被引:76
作者
Sakiyama, Y. [1 ]
Graves, D. B.
机构
[1] Univ Tokyo, Dept Mech Engn, Tokyo 1138656, Japan
[2] Univ Calif Berkeley, Dept Chem Engn, Berkeley, CA 94720 USA
关键词
D O I
10.1088/0022-3727/39/16/018
中图分类号
O59 [应用物理学];
学科分类号
摘要
We present clear evidence of two different discharge modes of the atmospheric pressure RF-excited plasma needle and the transition mechanism by the finite element method. The gas used is helium with 0.1% nitrogen addition. The needle has a point-to-plane geometry with a radius of 30 mu m at the tip, 150 mu m at the base and an inter-electrode gap of 1 mm. We employ the one-moment fluid model with the local field approximation. Our simulation results indicate that the plasma needle operates as a corona discharge at low power and that the discharge mode transitions to a glow discharge at a critical power. The discharge power increases but the discharge voltage drops abruptly by a factor of about 2 in the corona-glow transition. The plasma density and ionization is confined near the needle tip in corona-mode while it spreads back along the needle surface in glow-mode. The corona-glow transition is also characterized by a dramatic decrease in sheath thickness and an order of magnitude increase in plasma density and volume-averaged ionization. The transition is observed whether or not secondary electron emission is included in the model, and therefore we suggest that this is not an a-gamma transition.
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收藏
页码:3644 / 3652
页数:9
相关论文
共 32 条
[11]   Characterization of point-plane corona in air at radio frequency using a FE-FCT method [J].
Georghiou, GE ;
Morrow, R ;
Metaxas, AC .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1999, 32 (17) :2204-2218
[12]   The DC glow discharge at atmospheric pressure [J].
Goossens, O ;
Callebaut, T ;
Akishev, Y ;
Napartovich, A ;
Trushkin, N ;
Leys, C .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2002, 30 (01) :176-177
[13]   Solving the Boltzmann equation to obtain electron transport coefficients and rate coefficients for fluid models [J].
Hagelaar, GJM ;
Pitchford, LC .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2005, 14 (04) :722-733
[14]   Self-consistent modelling of charged and neutral particle dynamics in short-gap helium and hydrogen discharges [J].
Jugroot, M ;
Bayle, P ;
Yousfi, M ;
Eichwald, O .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1999, 32 (02) :106-120
[15]   Electrical and optical characterization of the plasma needle [J].
Kieft, IE ;
van der Laan, EP ;
Stoffels, E .
NEW JOURNAL OF PHYSICS, 2004, 6 :1-14
[16]   Plasma treatment of mammalian vascular cells: A quantitative description [J].
Kieft, IE ;
Darios, D ;
Roks, AJM ;
Stoffels, E .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2005, 33 (02) :771-775
[17]  
Loeb L. B., 1965, ELECT CORONAS
[18]  
Mathworks, 2004, MATLAB 7 0
[19]  
Mc Daniel E.W., 1964, Collision Phenomena in Ionized Gases
[20]  
Raizer Y.P., 1997, GAS DISCHARGE PHYS