DocumentCode :
2029891
Title :
Chemical Oxygen-Iodine Laser Technology Development using 3-D Navier-Stokes Simulation
Author :
Madden, Timothy J.
Author_Institution :
Directed Energy Directorate, US Air Force Res. Lab., Kirtland, NM
fYear :
2006
fDate :
38869
Firstpage :
124
Lastpage :
134
Abstract :
Chemical lasers are complex devices that couple two-phase chemistry, fluid dynamics, and optics to generate coherent radiation capable of projecting high energy fluxes very large distances at the speed of light. Such a capability is an obvious candidate for precision engagement of targets in multiple theaters of operation, as evidenced by development programs that are intended to advance chemical lasers from the laboratory to the weapon platform. Given the complexity of the interactions between the various physical processes, simulation of chemical lasers presents an obvious opportunity for the application of high performance computing to facilitate the understanding and optimization of these devices. The work presented here illustrates how high performance computing is used to achieve an increased understanding of the physics underlying chemical oxygen iodine lasers (COILs) and improve their operation. Computational fluid dynamic (CFD) for the chemically reacting COIL flowfield coupled to radiation transport models for the optical field are executed concomitant with achieving these goals
Keywords :
Navier-Stokes equations; chemical lasers; computational fluid dynamics; flow simulation; oxygen compounds; 3D Navier-Stokes simulation; chemical oxygen-iodine laser technology development; computational fluid dynamics; high performance computing; optical field; radiation transport models; Chemical lasers; Chemical technology; Chemistry; Computational fluid dynamics; Fluid dynamics; High performance computing; Laboratories; Laser theory; Optical coupling; Optical devices;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
HPCMP Users Group Conference, 2006
Conference_Location :
Denver, CO
Print_ISBN :
0-7695-2797-3
Type :
conf
DOI :
10.1109/HPCMP-UGC.2006.13
Filename :
4134044
Link To Document :
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