• Title of article

    Methane steam reforming in a novel ceramic microchannel reactor

  • Author/Authors

    Murphy، نويسنده , , Danielle M. and Manerbino، نويسنده , , Anthony W. Parker، نويسنده , , Margarite and Blasi، نويسنده , , Justin and Kee، نويسنده , , Robert J. and Sullivan، نويسنده , , Neal P.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    10
  • From page
    8741
  • To page
    8750
  • Abstract
    Microchannel heat exchangers and reactors can deliver very high performance in small packages. Such heat exchangers are typically fabricated from aluminum, copper, stainless steel, and silicon materials. Ceramic microchannel reactors offer some significant advantages over their metallic counterparts, including very-high-temperature operation, corrosion resistance in harsh chemical environments, low cost of materials and manufacturing, and compatibility with ceramic-supported catalysts. This work describes a ceramic microchannel reactor that achieves process intensification by combining heat-exchanger and catalytic-reactor functions to produce syngas. A complete computational fluid dynamics (CFD) model as well as a geometrically simplified hybrid CFD/chemical kinetics model is used in conjunction with experimentation to examine heat transfer, fluid flow, and chemical kinetics within the ceramic microchannel structure. Heat-exchanger effectiveness of up to 88% is experimentally demonstrated. Reactive heat-exchanger performance for methane-steam reforming reaches 100% methane conversion and high selectivity to syngas at a gas hourly space velocities (GHSV) of 15,000 h−1. Model results agree well with experimental data and provide insight into physical processes underway during reactor operation.
  • Keywords
    Methane steam reforming , Ceramic microchannel reactor , Computational fluid dynamics
  • Journal title
    International Journal of Hydrogen Energy
  • Serial Year
    2013
  • Journal title
    International Journal of Hydrogen Energy
  • Record number

    1863502