DocumentCode
1124527
Title
Effects of gas flow on gain of 10.6 micron CO2 laser amplifiers
Author
Cheo, P.K.
Author_Institution
Bell Telephone Laboratories, Inc., Whippany, NJ, USA
Volume
3
Issue
12
fYear
1967
fDate
12/1/1967 12:00:00 AM
Firstpage
683
Lastpage
689
Abstract
Small-signal gain of flowing gas CO2 laser amplifiers at 10.6 microns has been optimized for media including pure CO2 CO2 : N2 , CO2 : He, CO2 : CO, CO2 : O2 , CO2 : N2 : He, CO2 : CO : He, and CO2 : CO : N2 . Optimum gain of all flowing gas systems studied increases monotonically with increasing gas flow rate. In the low CO2 flow rate region, 10 < RCO 2 : < 50 cm3/min, gas flow enhances the gain most for systems containing N2 . Results provide strong evidence that the rapid increase in gain with flow rate in CO2 : N2 mixtures is due to removal by convection of the dissociated product CO. For 50 < RCO 2 < 200 cm3/min, a slow linear increase in gain of all gas mixtures with increasing flow rate occurs and is attributed to the cooling of gas temprature by convection. A stronger dependence of gain
on amplifier bore
, viz.,
, was obtained for flowing gas media relative to that previously observed for nonflowing gas mixtures which is consistent with the proposed mechanism of gas cooling by convection. Highest gain values obtained were 7.8 and 6.2 dB/m with the flowing gas mixtures CO2 : N2 : He and CO2 : CO : He, respectively, in a 12 mm bore water-cooled amplifier tube. Similarities between CO2 : N2 and CO2 : CO systems suggest that pumping of the CO2 laser by resonant transfer from CO* (
) can be significant.
on amplifier bore
, viz.,
, was obtained for flowing gas media relative to that previously observed for nonflowing gas mixtures which is consistent with the proposed mechanism of gas cooling by convection. Highest gain values obtained were 7.8 and 6.2 dB/m with the flowing gas mixtures CO
) can be significant.Keywords
Boring; Cooling; Fluid flow; Gain; Gas lasers; Helium; Laser excitation; Power amplifiers; Power lasers; Pump lasers;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.1967.1074441
Filename
1074441
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