DocumentCode
1471582
Title
Power optimization of small-scale chemical oxygen-iodine laser with jet-type singlet oxygen generator
Author
Blayvas, I. ; Barmashenko, B.D. ; Furman, D. ; Rosenwaks, S. ; Zagidullin, M.V.
Author_Institution
Dept. of Phys., Ben-Gurion Univ. of the Negev, Beer-Sheva, Israel
Volume
32
Issue
12
fYear
1996
fDate
12/1/1996 12:00:00 AM
Firstpage
2051
Lastpage
2057
Abstract
Studies of power optimization of a 5-cm gain length chemical oxygen-iodine laser (COIL) energized by a jet-type singlet oxygen generator (JSOG) are presented. For 10 mmol/s of Cl2 flow rate, output power of 132 W with chemical efficiency of 14.5% was obtained without a water vapor trap, 163 W and 18% were achieved when coholed (173 K). He was introduced downstream of the JSOG; under these conditions, the small-signal gain was estimated to be 0.32% cm-1 . 190 W and 10.5% were obtained for 20 mmol/s of CI2 flow rate. Replacing He by N2 as a buffer gas resulted in a 13% power decrease only. The main key for increasing the chemical efficiency of a COIL without a water vapor trap for a given iodine-oxygen mixing system is found to be high oxygen pressure and low water vapor pressure inside the reaction zone of the JSOG. The last goal was achieved by optimizing the composition and temperature of the basic hydrogen-peroxide solution (BHP). The experimental results are discussed and related to the composition and flow conditions of the gaseous reactants and of the BHP
Keywords
chemical lasers; chemical reactions; iodine; jets; optimisation; oxygen; 10.5 percent; 132 W; 14.5 percent; 163 W; 173 K; 18 percent; 190 W; CI2 flow rate; COIL; Cl2; O2-I; buffer gas; chemical efficiency; cm gain length; flow conditions; gaseous reactants; high oxygen pressure; hydrogen-peroxide solution; iodine-oxygen mixing system; jet-type singlet oxygen generator; low water vapor pressure; output power; power decrease; power optimization; reaction zone; small-scale chemical oxygen-iodine laser; small-signal gain; water vapor trap; Atom lasers; Atomic beams; Chemical lasers; Coils; Energy exchange; Gas lasers; Helium; Oxygen; Power generation; Power lasers;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/3.544749
Filename
544749
Link To Document