• DocumentCode
    17456
  • Title

    Dry Reforming of CH4 With CO2 to Generate Syngas by Combined Plasma Catalysis

  • Author

    Kuan Lun Pan ; Wei Chieh Chung ; Moo Been Chang

  • Author_Institution
    Grad. Inst. of Environ. Eng., Nat. Central Univ., Zhongli, Taiwan
  • Volume
    42
  • Issue
    12
  • fYear
    2014
  • fDate
    Dec. 2014
  • Firstpage
    3809
  • Lastpage
    3818
  • Abstract
    The hybrid plasma catalysis system was investigated for dry reforming of methane (DRM) with CO2 to form syngas. First, dielectric barrier discharge (DBD) alone was evaluated for the effectiveness in conversion of CO2 and CH4, and with the applied voltage of 15.0-19.5 kV, and frequency of 200 Hz. The ratio of feeding gas (CH4/CO2) and total gas flow rate were controlled at 1 and 40 mL/min, respectively. The results indicate that conversions of CO2 and CH4 significantly increase with increasing applied voltage. The conversion of both greenhouse gases (CO2 and CH4) achieved the maximum value of 18.9% and 24.0%, respectively, at applied voltage of 19.5 kV. Selectivity of CO decreases from 53.6% to 42.4% as applied voltage is increased from 15.0 to 19.5 kV, while selectivity of H2 increases from 30.1% to 35.8%. In addition, the influences of gas flow rate and ratio of feeding gas were also explored for DBD-alone system, and the results indicate that energy efficiency of syngas generation can be significantly increased as the flow rate is increased. As a catalyst with a high dielectric constant is placed into the discharge zone, the conversions of two gases (CO2 and CH4) reach 27.3% and 31.2%, respectively, at applied voltage of 19.5 kV. Selectivity of CO decreases from 59.4% to 49.6% as applied voltage is increased from 15 to 19.5 kV, while selectivity of H2 increases from 32.0% to 38.3%. In the meantime, energy efficiency of syngas generation is increased by 0.3%. Overall, this paper indicates that combining DBD with a catalyst of high dielectric constant is a viable process for DRM.
  • Keywords
    carbon compounds; catalysis; dielectric-barrier discharges; organic compounds; permittivity; plasma chemistry; syngas; CO2; catalyst; dielectric barrier discharge; dielectric constant; discharge zone; dry reforming; energy efficiency; frequency 200 Hz; gas flow rate; greenhouse gases; hybrid plasma catalysis; syngas; voltage 15 kV to 19.5 kV; Carbon; Dielectric constant; Discharges (electric); Gases; Methane; Plasma temperature; Dry reforming of methane (DRM); greenhouse gases (GHGs); nonthermal plasma; plasma catalysis; syngas; syngas.;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2014.2360238
  • Filename
    6939683