DocumentCode :
1010657
Title :
A multi-fluid stagnation-flow plasma model with self-consistent treatment of the collisional sheath
Author :
Meeks, Ellen ; Cappelli, Mark A.
Author_Institution :
Dept. of Mech. Eng., Stanford Univ., CA, USA
Volume :
21
Issue :
6
fYear :
1993
fDate :
12/1/1993 12:00:00 AM
Firstpage :
768
Lastpage :
777
Abstract :
A two-temperature, multifluid model of a plasma in stagnation flow against a cooled, electrically biased surface is presented. The model couples bulk fluid motion, species diffusion and convection, electron and bulk energy equations, and net finite-rate ionization with Poisson´s equation for the electric field in a generalized formulation. Application of the model to argon flow reveals important interactions between thermal, hydrodynamic, chemical and electrical boundary layers, with implications for current-limiting regimes of arcjet operation. The response of a planar Langmuir probe in contact with a collisional, flowing plasma is examined. Determinations of current-voltage behavior compare well with simple theory, including dependence on incident plasma velocity. Departures from this theory arise from boundary-layer perturbations near the electrode surface, away from free-stream conditions. The computational model incorporates a finite-rate catalytic recombination of ions and electrons at the electrode surface together with a specified current
Keywords :
plasma collision processes; plasma flow; plasma sheaths; stagnation flow; Ar; Poisson´s equation; arcjet operation; boundary-layer perturbations; bulk fluid motion; chemical boundary layer; collisional sheath; convection; cooled electrically biased surface; current-limiting regimes; current-voltage behavior; electrical boundary layers; electrode surface; electron energy; energy equations; finite-rate catalytic recombination; finite-rate ionization; hydrodynamic boundary; multi-fluid stagnation-flow plasma model; planar Langmuir probe; plasma velocity; self-consistent treatment; species diffusion; stagnation flow; thermal boundary; two-temperature multifluid model; Argon; Chemicals; Electrodes; Electrons; Hydrodynamics; Ionization; Plasma applications; Plasma chemistry; Poisson equations; Probes;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/27.256798
Filename :
256798
Link To Document :
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