Measurements of Secondary Electron Emission Effects in the Hall Thruster Discharge
Author(s) -
Yevgeny Raitses,
A. Smirnov,
David Staack,
N. J. Fisch
Publication year - 2005
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/934610
Subject(s) - secondary emission , electron , electron temperature , saturation (graph theory) , atomic physics , plasma , saturation current , kinetic energy , yield (engineering) , space charge , secondary electrons , voltage , physics , condensed matter physics , thermodynamics , classical mechanics , mathematics , combinatorics , quantum mechanics
The dependence of the maximum electron temperature on the discharge voltage is studied for two Hall thruster configurations, in which a collisionless plasma is bounded by channel walls made of materials with different secondary electron emission (SEE) properties. The linear growth of the temperature with the discharge voltage, observed in the channel with a low SEE yield, suggests that SEE is responsible for the electron temperature saturation in the thruster configuration with the channel walls having a higher SEE yield. The fact that the values of the electron temperature at saturation are rather high may indirectly support the recently predicted kinetic regime of the space charge saturation of the near-wall sheath in the thruster discharge. A correlation between the effects of the channel wall material on the electron temperature and the electron cross-field current was also observed
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