• DocumentCode
    1254951
  • Title

    Premixed Combustion Under Electric Field in a Constant Volume Chamber

  • Author

    Min Suk Cha ; Yonggyu Lee

  • Author_Institution
    Clean Combustion Res. Center, King Abdullah Univ. of Sci. & Technol., Thuwal, Saudi Arabia
  • Volume
    40
  • Issue
    12
  • fYear
    2012
  • Firstpage
    3131
  • Lastpage
    3138
  • Abstract
    The effects of electric fields on outwardly propagating premixed flames in a constant volume chamber were experimentally investigated. An electric plug, subjected to high electrical voltages, was used to generate electric fields inside the chamber. To minimize directional ionic wind effects, alternating current with frequency of 1 kHz was employed. Lean and rich fuel/air mixtures for both methane and propane were tested to investigate various preferential diffusion conditions. As a result, electrically induced instability showing cracked structure on the flame surface could be observed. This cracked structure enhanced flame propagation speed for the initial period of combustion and led to reduction in flame initiation and overall combustion duration times. However, by analyzing pressure data, it was found that overall burning rates are not much affected from the electric field for the pressurized combustion period. The reduction of overall combustion time is less sensitive to equivalence ratio for methane/air mixtures, whereas the results demonstrate pronounced effects on a lean mixture for propane. The improvement of combustion characteristics in lean mixtures will be beneficial to the design of lean burn engines. Two hypothetical mechanisms to explain the electrically induced instability were proposed: 1) ionic wind initiated hydrodynamic instability and 2) thermodiffusive instability through the modification of transport property such as mass diffusivity.
  • Keywords
    air; combustion; diffusion; electric field effects; gas mixtures; organic compounds; plasma instability; plasma transport processes; alternating current; burning rate; constant volume chamber; cracked flame surface structure; directional ionic wind effects; electric field effects; electric plug; electrically induced instability; flame propagation speed; fuel-air mixtures; high electrical voltages; hydrodynamic instability; mass diffusivity; methane-air mixture; outwardly propagating premixed flames; preferential diffusion conditions; premixed combustion; propane-air mixture; thermodiffusive instability; transport property modification; Combustion; Electric fields; Electric potential; Fuels; Ignition; Plugs; Electric field; electrically induced instability; flame cellularity; premixed flame propagation; propagation speed enhancement;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2012.2206120
  • Filename
    6253267