DocumentCode :
1714209
Title :
Modelling the spectrum of a S/sub 2/ high pressure discharge
Author :
Korber, A.
Author_Institution :
Philips Res. Lab., Aachen, Germany
fYear :
1999
Firstpage :
250
Abstract :
Summary form only given, as follows. High power microwave discharges in S/sub 2/ vapour at pressures of several bars have been discovered as a highly efficient white light source several years ago. The discharge spectrum is originating mainly from bound-bound transitions in the S/sub 2/ B/sup 3//spl Sigma//sub u//sup -/-X/sup 3//spl Sigma//sub g//sup a/nd system. At such high S/sub 2/ pressures re-absorption is an essential mechanism shifting the spectral maximum from the UV into the visible region. Assuming spherical symmetry, local thermal equilibrium and a cubic temperature profile the one-dimensional radiation transport equation is solved for each of the 330 vibronic bands connecting the niveaus v´=0...9 and v´´=0...32 yielding a quantitative description of the spectrum with only two free parameters: the maximum discharge temperature T/sub max/ and the mean width /spl delta/v/sub vib/ of a vibronic band. The response of the spectrum to variations of experimental conditions (S/sub 2/ pressure, input power, ...) may be expressed by very reasonable changes of these model parameters: The input power determines the total amount of radiation (via the value of T/sub max/) and the S/sub 2/ pressure influences the position of the spectral maximum (reflected by the value of /spl delta/v/sub vib/). In the red and IR the experimental spectrum is higher than the simulation indicating contributions of continuum radiation or other molecular transitions which are not included in the model.
Keywords :
high-frequency discharges; light sources; plasma diagnostics; plasma simulation; plasma transport processes; sulphur; IR region; S/sub 2/; S/sub 2/ high pressure discharge; S/sub 2/ vapour; UV region; bound-bound transitions; continuum radiation; cubic temperature profile; discharge spectrum; high power microwave discharges; local thermal equilibrium; maximum discharge temperature; modelling; molecular transitions; one-dimensional radiation transport equation; quantitative description; red region; simulation; spectral maximum; spherical symmetry; vibronic bands; visible region; white light source; Barium; Electrons; Fault location; Filling; Laboratories; Lamps; Light sources; Numerical models; Production; Temperature;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 1999. ICOPS '99. IEEE Conference Record - Abstracts. 1999 IEEE International Conference on
Conference_Location :
Monterey, CA, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-5224-6
Type :
conf
DOI :
10.1109/PLASMA.1999.829575
Filename :
829575
Link To Document :
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