Modeling the chemical kinetics of high-pressure glow discharges in mixtures of helium with real air

被引:81
作者
Stalder, K. R. [1 ]
Vidmar, R. J.
Nersisyan, G.
Graham, W. G.
机构
[1] Stalder Technol & Res, Redwood City, CA 94063 USA
[2] Univ Nevada, Reno, NV 89506 USA
[3] Queens Univ Belfast, Belfast BT7 1NN, Antrim, North Ireland
基金
英国工程与自然科学研究理事会;
关键词
D O I
10.1063/1.2193170
中图分类号
O59 [应用物理学];
学科分类号
摘要
Atmospheric and near-atmospheric pressure glow discharges generated in both pure helium and helium-air mixtures have been studied using a plasma chemistry code originally developed for simulations of electron-beam-produced air plasmas. Comparisons are made with experimental data obtained from high-pressure glow discharges in helium-air mixtures developed by applying sinusoidal voltage wave forms between two parallel planar metallic electrodes covered by glass plates, with frequencies ranging from 10 to 50 kHz and electric field strengths up to 5 kV/cm. The code simulates the plasma chemistry following periodic pulsations of ionization in prescribed E/N environments. Many of the rate constants depend on gas temperature, electron temperature, and E/N. In helium plasmas with small amounts (similar to 850 ppm) of air added, rapid conversion of atomic helium ions to molecular helium ions dominate the positive ion kinetics and these species are strongly modulated while the radical species are not. The charged and neutral species concentrations at atmospheric pressure with air impurity levels up to 10 000 ppm are predicted. The negative ion densities are very small but increase as the air impurity level is raised, which indicates that in helium-based systems operated in open air the concentration of negative ions would be significant. If water vapor at typical humidity levels is present as one of the impurities, hydrated cluster ions eventually comprise a significant fraction of the charged species. (C) 2006 American Institute of Physics.
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页数:8
相关论文
共 28 条
[1]   Two-dimensional space-time-resolved emission spectroscopy on atmospheric pressure glows in helium with impurities [J].
Anderson, C ;
Hur, M ;
Zhang, P ;
Mangolini, L ;
Kortshagen, U .
JOURNAL OF APPLIED PHYSICS, 2004, 96 (04) :1835-1839
[2]  
Bortner M.H., 1979, DEFENSE NUCL AGENCY, V2nd
[3]  
CHERLET M, 1971, UNPUB P 10 INT C PHE
[4]   HIGH-PRESSURE HELIUM AFTERGLOW AT ROOM-TEMPERATURE [J].
DELOCHE, R ;
MONCHICOURT, P ;
CHERET, M ;
LAMBERT, F .
PHYSICAL REVIEW A, 1976, 13 (03) :1140-1176
[5]  
DELPECH JF, 1973, UNPUB P 11 INT C PHE
[6]   Mechanisms controlling the transition from glow silent discharge to streamer discharge in nitrogen [J].
Gherardi, N ;
Massines, F .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2001, 29 (03) :536-544
[7]  
Golubovskii YB, 2003, J PHYS D, V36, P49
[8]   MEAN ENERGY-LOSS PER ION-PAIR AND STOPPING POWER OF HELIUM GAS FOR ELECTRONS [J].
JHANWAR, BL ;
KHARE, SP .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 1973, 6 (03) :462-466
[9]   Electrically efficient production of a diffuse nonthermal atmospheric plasma [J].
Kong, MG ;
Deng, XT .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2003, 31 (01) :7-18
[10]   NANOSECOND TIME-RESOLVED SPECTROSCOPY OF N=2 LEVELS IN A HIGH-PRESSURE HE DISCHARGE [J].
LAWLER, JE ;
PARKER, JW ;
ANDERSON, LW .
PHYSICAL REVIEW LETTERS, 1977, 39 (09) :543-546