Enhancing Reaction Selectivity by Intentional Control of Concentration Profile in Catalytic Microreactor

    • KUDO Shinji
    • Department of Chemical Engineering, Graduate School of Engineering, Kyoto University
    • MAKI Taisuke
    • Department of Chemical Engineering, Graduate School of Engineering, Kyoto University
    • KONO Hiroyuki
    • Department of Chemical Engineering, Graduate School of Engineering, Kyoto University
    • OLEA Maria
    • School of Science and Technology, University of Teesside, Middlesbrough

    • MAE Kazuhiro
    • Department of Chemical Engineering, Graduate School of Engineering, Kyoto University

Abstract

This paper reports the results of a computational fluid dynamics (CFD) simulation for a sequential heterogeneous catalytic reaction by comparing the reaction selectivity in a catalytic microreactor with that in a conventional catalytic packed-bed reactor. The comparative simulation revealed that the catalytic microreactor has an advantage over the conventional reactor in the diffusion control regime, and that the control of concentration distribution of reactants by molecular diffusion in the microspace can enhance the selectivity of the desired product. The concentration distribution was intentionally controlled by the shape of the microreactor. The yield of the desired product in the microreactor was 1.16 times that in the packed-bed reactor. CFD simulation of methanol decomposition was also performed by fitting the parameters with the experimental results. The results of the CFD simulation verified the advantage of the microreactor.

Journal

JOURNAL OF CHEMICAL ENGINEERING OF JAPAN  

JOURNAL OF CHEMICAL ENGINEERING OF JAPAN 43(1), 63-69, 2010-03-01 

The Society of Chemical Engineers, Japan

References:  12

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Codes

  • NII Article ID (NAID) :
    10027152371
  • NII NACSIS-CAT ID (NCID) :
    AA00709658
  • Text Lang :
    ENG
  • Article Type :
    ART
  • ISSN :
    00219592
  • NDL Article ID :
    10612028
  • NDL Source Classification :
    ZP1(科学技術--化学・化学工業)
  • NDL Call No. :
    Z53-R395
  • Databases :
    CJP  NDL  J-STAGE 

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