Title :
One-Dimensional Fluid Model and Characteristics of the Dielectric Barrier Discharge in
Mixture
Author :
Avtaeva, Svetlana V. ; Saghi, Belkacem ; Rahmani, Bouabdellah
Author_Institution :
Dept. of Phys. & Microelectron., Kyrgyz-Russian Slavic Univ., Bishkek, Kyrgyzstan
Abstract :
The 1-D fluid model of the two-barrier Xe-Cl2 excilamp radiating at wavelength of 308 nm is developed. The radiation is excited in a 4-mm gas gap between dielectric-layers-covered metallic electrodes using the dielectric barrier discharge (DBD). The spatio-temporal characteristics of the DBD for 0.99Xe-0.01Cl2 mixture at pressure 250 torr are simulated at applying to the electrodes sinusoidal voltage with a frequency of 100 kHz and an amplitude of 4.25 kV. The average power density inputted in the discharge is 2.8 W/cm3 per cycle and outputted in the form of the ultraviolet emission is 0.78 W/cm3 per cycle. It is shown that additive of 1% molecular chlorine to xenon allows getting ~90% radiation on XeCl* molecule band (308 nm) at the discharge radiative efficiency ~26%. For most parts of the voltage cycle, the Xe-Cl2 plasma is electronegative, and the most abundant ions are Xe2+ and Cl-. However, at propagation of a current pulse over discharge gap, the plasma becomes electropositive near dielectric surface, where the most abundant charged particles become electrons and Xe+ ions.
Keywords :
chlorine; discharge lamps; electric breakdown; gas mixtures; plasma sources; ultraviolet sources; xenon; 1D fluid model; Cl2; DBD spatiotemporal characteristics; Xe; Xe-Cl2 mixture; average input power density; current pulse propagation; dielectric barrier discharge; dielectric layer covered metallic electrodes; dielectric surface; discharge radiative efficiency; electronegative plasma; electropositive plasma; frequency 100 kHz; gas gap; pressure 250 torr; sinusoidal voltage; two barrier Xe-Cl2 excilamp; ultraviolet emission; voltage 4.25 kV; wavelength 308 nm; Dielectrics; Discharges; Electrodes; Ions; Mathematical model; Surface discharges; Xenon; Chlorine; gas discharge; modeling; ultraviolet generation; xenon;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2011.2159627