• DocumentCode
    538786
  • Title

    Kinetic Study on High Temperature Oxidation of CO/H2/Cl2 Mixture

  • Author

    Bo, Wang ; Yong, Chi

  • Author_Institution
    Coll. of Energy & Power Eng., Univ. of Shanghai for Sci. & Technol., Shanghai, China
  • Volume
    1
  • fYear
    2010
  • fDate
    18-20 Dec. 2010
  • Firstpage
    886
  • Lastpage
    891
  • Abstract
    The kinetic mechanism of CO/H2/Cl2 mixture oxidation is an important subsystem of chlorinated waste combustion chemistry. A new kinetic model is constructed and validated by the data from experiments, in which this system was studied in an atmospheric pressure flow reactor to investigate the influence of chlorine content and reaction temperature on CO conversion. The inhibition mechanism is discussed with sensitivity analysis and rate of productivity analysis. The results indicate that CO oxidation is inhibited by chlorine. CO conversion varies inversely with the chlorine to hydrogen mole ratio of the inlet mixture and increases with temperature. The HCl formation process and the reaction HCl+OH=Cl+H2O decrease the OH concentration in the reaction zone and lead to low CO conversion. The new model predicts HCl concentration relatively well. The reaction H+O2=HO2 shows inhibition effect on both CO conversion and HCl formation. Increasing reaction temperature leads to higher OH concentration in the reactor and larger rate of the reaction CO+OH=CO2+H, which abates the inhibition effect of chlorine on CO oxidation.
  • Keywords
    chemical reactors; chlorine compounds; combustion; gas mixtures; kinetic theory; atmospheric pressure flow reactor; carbon monoxide; chlorinated waste combustion chemistry; chlorine content; inhibition mechanism; inlet mixture; kinetic mechanism; oxidation; productivity analysis; reaction temperature; sensitivity analysis; Carbon monoxide; Chlorine; Inhibition; Oxidation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Digital Manufacturing and Automation (ICDMA), 2010 International Conference on
  • Conference_Location
    ChangSha
  • Print_ISBN
    978-0-7695-4286-7
  • Type

    conf

  • DOI
    10.1109/ICDMA.2010.383
  • Filename
    5701299