CFD modeling of methane autothermal reforming in a catalytic microreactor

被引:0
|
作者
Fazeli, Ali [1 ]
Behnam, Mohsen [1 ]
机构
[1] Univ Tehran, Tehran 14174, Iran
关键词
microreactor; CFD; autothermal reforming; fuel cell;
D O I
暂无
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Producing hydrogen from natural gas for a mini scale fuel cell is a new challenge for researchers. Therefore, modeling of hydrogen production microreactors should be helpful for designing and developing new microreactors. Experimental sensing of velocity, concentration, temperature and reaction rates in numerous points of the microreactor is impracticable. A microreactor in special geometry was considered for hydrogen production and a CFD model was developed in order to incorporate the mechanism of autothermal reforming. This mechanism includes three main reactions and Langmuir-Hinshelwood type kinetic rates. A three dimensional reformer model was developed to simulate the reactive laminar flow model of this microreactor. Effects of styles of feed entrance, air to fuel ratio and adding water to methane were studied. This model shows that there are hot spots near the entrance of the microreactor where the total oxidation of methane occurs and air distribution along the microreactor is a good solution for hot spot problems. The model shows that air distribution is good for fuel cell application because of high hydrogen production and low CO content in the outlet.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Development of Supported Ni Catalysts for Autothermal Reforming of Methane
    Matus, E., V
    Vasil'ev, S. D.
    Ismagilov, I. Z.
    Ushakov, V. A.
    Kerzhentsev, M. A.
    Ismagilov, Z. R.
    [J]. CHEMISTRY FOR SUSTAINABLE DEVELOPMENT, 2020, 28 (04): : 403 - 411
  • [42] Autothermal reforming of methane gas - Modelling and experimental validation
    Ding, O. L.
    Chan, S. H.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (02) : 633 - 643
  • [43] Kinetic-Operational Mechanism to Autothermal Reforming of Methane
    Souza, Aleksandros E. A. M.
    Maciel, Leonardo J. L.
    Cavalcanti-Filho, Valderio O.
    Lima Filho, Nelson M.
    Abreu, Cesar A. M.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2011, 50 (05) : 2585 - 2599
  • [44] Effect of support on autothermal reforming of methane on nickel catalysts
    Lisboa, Juliana da Silva
    Maia, Monica Pinto
    Erthal Moreira, Ana Paula
    Passos, Fabio Barboza
    [J]. NATURAL GAS CONVERSION VIII, PROCEEDINGS OF THE 8TH NATURAL GAS CONVERSION SYMPOSIUM, 2007, 167 : 165 - 170
  • [45] Autothermal Reforming of Methane in a Reverse-Flow Reactor
    Liu, Tengfei
    Temur, Hakan
    Veser, Goetz
    [J]. CHEMICAL ENGINEERING & TECHNOLOGY, 2009, 32 (09) : 1358 - 1366
  • [46] CFD modeling of a industrial-scale steam methane reforming furnace
    Tran, Anh
    Aguirre, Andres
    Durand, Helen
    Crose, Marquis
    Christofides, Panagiotis D.
    [J]. CHEMICAL ENGINEERING SCIENCE, 2017, 171 : 576 - 598
  • [47] Production of hydrogen-rich gases from steam reforming of methane in an automatic catalytic microreactor
    Levent, M
    Gunn, DJ
    El-Bousiffi, MA
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2003, 28 (09) : 945 - 959
  • [48] Microreactor for the Catalytic Partial Oxidation of Methane
    Widodo Wahyu Puwanto
    Yuswan Muharam
    [J]. Journal of Energy Chemistry, 2006, (04) : 271 - 274
  • [49] Kinetic Modeling of Autothermal Reforming of Dimethyl Ether
    Creaser, Derek
    Nilsson, Marita
    Pettersson, Lars J.
    Dawody, Jazaer
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2010, 49 (20) : 9712 - 9719
  • [50] Catalytic combustion and steam reforming of hydrocarbons in microreactor
    Dimov, Sergey
    Gasenko, Ol'ga
    [J]. XXXIII SIBERIAN THERMOPHYSICAL SEMINAR (STS-33), 2017, 115