• DocumentCode
    773069
  • Title

    Modeling of the ElectriCOIL system

  • Author

    Carroll, David L. ; Verdeyen, Joseph T. ; King, Darren M. ; Woodard, Brain S. ; Skorski, Lawrence W. ; Zimmerman, Joseph W. ; Solomon, Wayne C.

  • Author_Institution
    CU Aerosp., Urbana, IL, USA
  • Volume
    39
  • Issue
    9
  • fYear
    2003
  • Firstpage
    1150
  • Lastpage
    1159
  • Abstract
    Theoretical studies have indicated that sufficient fractions of O2(1Δ) may be produced in an electrical discharge that will permit lasing of an electric discharge oxygen-iodine laser (ElectriCOIL) system. Results of those studies along with more recent experimental results show that electric excitation is a very complicated process that must be investigated with advanced diagnostics along with modeling to better understand this highly complex system. A kinetic package appropriate for the ElectriCOIL system is presented and implemented in the detailed electrodynamic GlobalKin model and the Blaze II chemical laser modeling code. A parametric study with the Blaze II model establishes that it may be possible to attain positive gain in the ElectriCOIL system, perhaps even with subsonic flow. The Blaze II model is in reasonable agreement with early gain data. Temperature is a critical issue, especially in the subsonic cases, and thus it appears that supersonic flow will be important for the ElectriCOIL system. Simulations of a supersonic ElectriCOIL system indicate that it may be possible to attain reasonable performance levels, even at low yield levels of 20% or less. In addition, pre-dissociation of the iodine is shown to be very important for the supersonic flow situation.
  • Keywords
    chemical lasers; discharges (electric); iodine; laser theory; oxygen; reaction kinetics theory; supersonic flow; ElectriCOIL system; O2-I; chemical laser modeling code; electric discharge oxygen-iodine laser; electrical discharge; electrodynamic GlobalKin model; iodine; parametric study; pre-dissociation; subsonic flow; supersonic flow situation; Atom lasers; Atomic beams; Atomic measurements; Chemical lasers; Kinetic theory; Laser excitation; Laser modes; Laser transitions; Pump lasers; Radio frequency;
  • fLanguage
    English
  • Journal_Title
    Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9197
  • Type

    jour

  • DOI
    10.1109/JQE.2003.816091
  • Filename
    1225835