DocumentCode :
1328401
Title :
Resonance characteristics of a cavity-operated electrodeless high-pressure microwave discharge system
Author :
Offermanns, Stephan
Author_Institution :
Philips GmbH, Aachen, West Germany
Volume :
38
Issue :
7
fYear :
1990
fDate :
7/1/1990 12:00:00 AM
Firstpage :
904
Lastpage :
911
Abstract :
To characterize the resonance behavior of cavity-operated electrodeless high-pressure microwave discharge systems, a microwave circuit is developed that allows high-power network analysis during the operation of the discharge. The frequency-dependent complex impedance of the cavity including the plasma is obtained from a reflection measurement in the range 1.5 GHz-4.5 GHz. This method allows an observation of the actual resonance frequency and the actual vectorial mismatch so that a coupling efficiency >99% can always be achieved with proper adjustment of the operation frequency and coupling probe. Experimental results with a cylindrical TM010 cavity and a coaxially situated discharge show a decrease of the resonance frequency with increasing power (increasing plasma temperature, electron density, and electrical conductivity) depending on the discharge geometry and the plasma composition. In accordance with a simple one-dimensional model, the Q factor passes through a minimum at medium power levels, where the cavity discharge system absorbs the microwave energy most effectively
Keywords :
cavity resonators; discharges (electric); microwave reflectometry; 1.5 to 4.5 GHz; Q factor; cavity; cavity-operated electrodeless high-pressure microwave discharge system; coaxially situated discharge; coupling efficiency; cylindrical; discharge geometry; electrical conductivity; electron density; frequency-dependent complex impedance; high-power network analysis; microwave circuit; microwave energy; one-dimensional model; plasma temperature; reflection measurement; resonance behavior; vectorial mismatch; Frequency measurement; Impedance measurement; Microwave circuits; Plasma measurements; Plasma properties; Plasma temperature; RLC circuits; Reflection; Resonance; Resonant frequency;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/22.55783
Filename :
55783
Link To Document :
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