DocumentCode :
923458
Title :
Simulating Plasma-Induced Hall Thruster Wall Erosion With a Two-Dimensional Hybrid Model
Author :
Sommier, Emmanuelle ; Scharfe, Michelle K. ; Gascon, Nicolas ; Cappelli, Mark A. ; Fernandez, Eduardo
Author_Institution :
Dept. of Mech. Eng., Stanford Univ., Stanford, CA, USA
Volume :
35
Issue :
5
fYear :
2007
Firstpage :
1379
Lastpage :
1387
Abstract :
A 2-D radial-axial (r-z) hybrid fluid/particle-in-cell (PIC) model has been developed to model energetic particle-induced channel-wall erosion in coaxial Hall discharge plasma thrusters. The discharge model geometry corresponds to that of a so-called stationary plasma thruster with an extended dielectric channel, and the computational domain extends from the anode at the base of this channel through the channel interior and into the near-field plume region. A model of the wall-erosion process has been added to the simulation in order to assess thruster degradation due to ion and energetic-neutral-induced sputtering of the channel walls. The effect of ion-neutral collisions, including momentum and charge-exchange collisions, on the erosion process is examined. These models are used to simulate the long-term wall-erosion history. For the specific Hall-thruster-configuration modeled, collisions were found to have less than a 10% effect on wall erosion. The erosion rate is seen to decrease with time, in good agreement with experimental measurements of long-term erosion in similar thrusters, resulting in a wall recession of as much as 2 mm after 4000 h of simulated operation.
Keywords :
discharges (electric); plasma devices; plasma magnetohydrodynamics; plasma simulation; plasma-wall interactions; Hall discharge plasma thrusters; charge-exchange collisions; dielectric channel; discharge model geometry; energetic-neutral-induced sputtering; plasma propulsion; plasma-induced hall thruster wall erosion; stationary plasma thruster; two-dimensional hybrid model; Anodes; Coaxial components; Computational geometry; Computational modeling; Degradation; Dielectrics; History; Plasma simulation; Solid modeling; Sputtering; Hall thrusters; particle simulations; plasma propulsion;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2007.905943
Filename :
4343195
Link To Document :
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