• DocumentCode
    1766181
  • Title

    A reduced set of air plasma reactions for nanosecond pulsed plasmas

  • Author

    Moon Soo Bak ; Cappelli, Mark A.

  • Author_Institution
    Stanford Univ., Stanford, CA, USA
  • Volume
    43
  • Issue
    4
  • fYear
    2015
  • fDate
    42095
  • Firstpage
    995
  • Lastpage
    1001
  • Abstract
    The reduction of a mechanism describing plasma chemistry for dry air has been carried out for conditions of nanosecond-pulsed discharge plasmas. The discharge conditions include both diffuse glow and filamentary spark modes. A reduced set for glow discharges is found to have inelastic electron-impact reactions of N2 and O2, quenching of excited N2, electron attachment to O2-, ion conversion between N2+, N4+, O4+, O2+·N2, and O2+, and ion-ion and electron-ion recombination. When the discharge is in a filamentary mode, additional reactions are required beyond those for the glow discharge as a result of the increased electron number density and high levels of molecular dissociation. Those additional reactions include electron-impact excitation of N and O, quenching of excited N2 by N and O, and associative ionization by collisions between excited N2. A significant reduction in the number of species and reactions is obtained without compromising the predicted species´ number densities and temperature. These results provide researchers with reduced kinetic mechanisms that high-fidelity simulations could rely on to save computational time.
  • Keywords
    air; electron attachment; excited states; glow discharges; nitrogen; oxygen; plasma chemistry; plasma collision processes; plasma density; sparks; N2; O2; air-plasma reactions; diffuse glow mode; discharge conditions; dry air; electron attachment; electron number density; electron-impact excitation; electron-ion recombination; excited N2 quenching; filamentary spark mode; glow discharges; high-fidelity simulations; inelastic electron-impact reactions; ion-ion recombination; molecular dissociation; nanosecond-pulsed discharge plasmas; plasma chemistry; reduced kinetic mechanisms; Combustion; Discharges (electric); Glow discharges; Heating; Kinetic theory; Plasma temperature; Plasma chemistry; plasma simulation; plasma simulation.;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2015.2409300
  • Filename
    7061494