DocumentCode :
2213874
Title :
Electron temperature and density in a metal-halide discharge lamp
Author :
Karabourniotis, D. ; Drakakis, E.
Author_Institution :
Dept. of Phys., Crete Univ., Greece
fYear :
2002
fDate :
26-30 May 2002
Firstpage :
315
Abstract :
Summary form only given. The utilization of self-reversed line spectroscopy (SRLS) as a diagnostics method independent of the LTE assumption for studying metal halide discharges is discussed. In a previous paper, electron and ion densities had been deduced in Hg-NaI discharges from a chemical equilibrium model using optically thin lines and assuming LTE (Karabourniotis et al., 1994). Recently, the electron temperature, T/sub e/, was obtained in a pure Hg discharge using SRLS (Karabourniotis, 2001). This work is aimed at applying SRLS for determining the electron temperature in mercury-metal halide discharges. Since this method is based on relative intensity measurements, it might be used in discharge lamps with ceramic envelopes. Another motive is the determination of the electron and ion densities. Sodium iodide is a very usual additive in metal halide lamps. To avoid cataphoretic effects they are operated in alternating current. A Hg-NaI discharge lamp operated in AC (50 Hz, 75 W/cm/sup 3/) was studied at a pressure of 2.8 bar. Sodium is an easily ionized element so that in AC operation electron and ions densities are expected to vary strongly within the current period. It shows that only time-resolved measurements will have a clear physical meaning. High-precision side-on-phase resolved radiation intensity measurements were performed by means of an automated experimental set-up. The local values of T/sub e/ were determined from the Hg lines 5461 and 4047 A using SRLS. Since the ionization energy E/sub x//sup +/ of the high-lying levels x=Hg 6/sup 3/D/sub 2/ and Na 5/sup 2/S/sub 1/2/ is sufficiently small with E/sub x//sup +/<2(kT/sub e/), they are in equilibrium with the continuum. This implies that their population densities, n/sub x/, satisfy the Saha equation. By Abel-inverting the lines Hg 5770 and Na 6161 A, the radial density profiles of n/sub x/ were obtained. Since the radial profile of the sodium line 6161 A is nonmonotonic, high-accuracy Abel-inversion- technique is required. Thus, having determined T/sub e/ and n/sub x/ the densities of the mercury and sodium ions as well as the electron density were deduced. Assuming complete LTE, the plasma temperature and the electron density were also obtained from the line Hg 5770 A and the known mercury quantity for comparison.
Keywords :
alkali metal halides; electron density; plasma density; plasma diagnostics; plasma temperature; 2.8 bar; 4047 A; 50 Hz; 5461 A; 5770 A; 6161 A; Abel-inversion technique; Hg 6/sup 3/D/sub 2/; Na 5/sup 2/S/sub 1/2/; NaI; cataphoretic effects; ceramic envelopes; diagnostics method; discharge lamps; electron densities; electron density; electron temperature; ion densities; ionization energy; metal halide discharges; metal-halide discharge lamp; plasma temperature; radial density profiles; radial profile; relative intensity measurements; self-reversed line spectroscopy; Ceramics; Chemicals; Electron optics; Energy resolution; Lamps; Mercury (metals); Particle beam optics; Performance evaluation; Spectroscopy; Temperature;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2002. ICOPS 2002. IEEE Conference Record - Abstracts. The 29th IEEE International Conference on
Conference_Location :
Banff, Alberta, Canada
Print_ISBN :
0-7803-7407-X
Type :
conf
DOI :
10.1109/PLASMA.2002.1030641
Filename :
1030641
Link To Document :
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