DocumentCode
1278320
Title
Results of small-signal gain measurements on a supersonic chemical oxygen iodine laser with an advanced nozzle bank
Author
Nikolaev, Valeri D. ; Zagidullin, Marsel V. ; Svistun, Michael I. ; Anderson, Brian T. ; Tate, Ralph F. ; Hager, Gordon D.
Author_Institution
P.N. Lebedev Phys. Inst., Samara, Russia
Volume
38
Issue
5
fYear
2002
fDate
5/1/2002 12:00:00 AM
Firstpage
421
Lastpage
428
Abstract
High-resolution diode laser spectroscopy has been used to probe the gain in the active medium formed by an advanced supersonic chemical oxygen iodine laser (COIL), ejector nozzle bank. The probe beam was directed through the medium at 90° (normal) to the flow velocity and at an angle of 27.5° away from normal incidence. Analysis of the small-signal gain spectrum allowed for the determination of the gain, average gas velocity, static pressure, and temperature. The dependence of gain, temperature, and gas velocity on the primary nitrogen molar flow rate and basic hydrogen peroxide temperature was obtained. A maximum small-signal gain of 7 × 10-3 cm-1, average gas velocity of 575 m/s, static temperature of 172 K were measured for flow rates of 270 mmole/s of primary nitrogen, 39.2 mmole/s of chlorine, 11 mmole/s of secondary nitrogen, and 0.8 mmole/s of iodine. Estimation of the static pressure in the flow core from spectroscopic data is very close to the static sidewall pressure. The role of transverse velocity components in the gas flow and their effect on the interpretation of gain profiles is discussed
Keywords
Doppler measurement; chemical lasers; infrared spectroscopy; iodine; laser variables measurement; nozzles; oxygen; supersonic flow; COIL; O2-I; active medium; advanced nozzle bank; advanced supersonic chemical oxygen iodine laser; average gas velocity; basic hydrogen peroxide temperature; ejector nozzle bank; flow core; flow velocity; gain; gain profiles; gas velocity; high-resolution diode laser spectroscopy; maximum small-signal gain; normal incidence; primary nitrogen molar flow rate; probe beam; secondary nitrogen; small-signal gain measurements; small-signal gain spectrum; spectroscopic data; static pressure; static sidewall pressure; static temperature; supersonic chemical oxygen iodine laser; temperature; transverse velocity components; Chemical lasers; Diode lasers; Fluid flow measurement; Gain measurement; Gas lasers; Laser beams; Nitrogen; Probes; Spectroscopy; Temperature dependence;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/3.998612
Filename
998612
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