DocumentCode :
2271414
Title :
Modeling electronegative discharges at low pressure
Author :
Lichtenberg, A.J. ; Lee, Chi-Kwan ; Lieberman, M.A. ; Kouznetsov, I.
Author_Institution :
California Univ., Berkeley, CA, USA
fYear :
1995
fDate :
5-8 June 1995
Firstpage :
149
Abstract :
Summary form only given, as follows. In a previous study, a macroscopic analytic model was developed for a plasma discharge with a three component (electronegative) core and an electropositive edge region. Both regions were treated in the high pressure approximation of constant mobility for the positive ions. We extend the treatment to low pressures for which the ion thermal velocity within the electropositive region is much less than the ion flow velocity by using a variable mobility model with constant mean free path for the positive ions. The density at the interface between the electropositive region and the sheath is determined by generalizing the low pressure electropositive solutions to a finite flow boundary condition at the interface with the electronegative plasma. The results are also extended to a wider parameter range in which the electropositive region disappears and a more general Bohm loss condition holds at the plasma-sheath interface. It is also possible to have an additional transition region in which the flow at the edge of the electronegative region is required to be sonic. The resulting algebraic equations are solved numerically over all parameter ranges and compared to analytical approximations. It is shown that the formalism can be extended to two positive ion species (four plasma components), and explicit equations for oxygen are presented.
Keywords :
discharges (electric); flow; oxygen; plasma flow; plasma sheaths; plasma theory; plasma transport processes; Bohm loss condition; O/sub 2/; algebraic equations; analytical approximations; constant mean free path; electronegative core; electronegative discharges; electronegative plasma; electropositive edge region; explicit equations; finite flow boundary condition; high pressure approximation; ion flow velocity; ion thermal velocity; low pressure discharges; low pressure electropositive solutions; macroscopic analytic model; plasma discharge; plasma-sheath interface; positive ion species; sheath; three component core; transition region; variable mobility model; Boundary conditions; Equations; Plasma density; Plasma sheaths; US Department of Energy;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 1995. IEEE Conference Record - Abstracts., 1995 IEEE International Conference on
Conference_Location :
Madison, WI, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-2669-5
Type :
conf
DOI :
10.1109/PLASMA.1995.531592
Filename :
531592
Link To Document :
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