Modeling of Autothermal Steam Methane Reforming in a Fluidized Bed Membrane Reactor

被引:0
|
作者
Dogan, Meltem [1 ]
Posarac, Dusko [2 ]
Grace, John [2 ]
Adris, Alaa-Eldin M. [3 ]
Lim, C. Jim [2 ]
机构
[1] Gazi Univ, Ankara, Turkey
[2] Univ British Columbia, Vancouver, BC V5Z 1M9, Canada
[3] Membrane Reactor Technol Ltd, Vancouver, BC, Canada
关键词
Steam methane reforming; fluidization; membrane reactor; hydrogen; methane;
D O I
暂无
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Fluidized bed reactors for steam methane reforming, with and without immersed membrane surfaces for withdrawal of hydrogen, are modeled with oxygen added in order to provide the endothermic heat required by the reforming reactions. Porous alumina, palladium and palladium-coated high-flux tubes are investigated as separation materials, the latter two being permselective. Hydrogen yield and permeate hydrogen molar flow are predicted to decrease with increasing oxygen flow, and to increase with temperature. When the steam-to-carbon ratio increases, permeate hydrogen yield decreases slightly, while the total hydrogen yield increases for all configurations. The flow of oxygen required to achieve autothermal conditions depends on such factors as the reactor temperature, steam-to-carbon ratio and preheating of the feed.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Autothermal reforming of methane with integrated CO2 capture in novel fluidized bed membrane reactors
    Gallucci, F.
    Annaland, M. van Sint
    Kuipers, J. A. M.
    ASIA-PACIFIC JOURNAL OF CHEMICAL ENGINEERING, 2009, 4 (03) : 334 - 344
  • [42] Comprehensive Modeling of Sorption-Enhanced Steam Reforming of Coke Oven Gas in a Fluidized Bed Membrane Reactor
    Chen, Yumin
    Zhang, Baoxu
    Peng, Ruifeng
    Chuai, Xing
    Cui, Xin
    Kang, Bokai
    Yan, Weijie
    Zhang, Junying
    ENERGY & FUELS, 2020, 34 (03) : 3065 - 3086
  • [43] Pure hydrogen production via autothermal reforming of ethanol in a fluidized bed membrane reactor: A simulation study
    Fundamentals of Chemical Reaction Engineering Group, Faculty of Science and Technology, IMPACT, University of Twente, P.O. Box 217, NL-7500 AE Enschede, Netherlands
    Int J Hydrogen Energy, 4 (1659-1668):
  • [44] Cold modeling of a direct coupling autothermal methane reforming reactor
    Wang, Yu-qin
    Dai, Zheng-hua
    Cheng, Hong
    Xu, Jian-liang
    Wang, Fu-chen
    CHEMICAL ENGINEERING JOURNAL, 2011, 168 (01) : 303 - 311
  • [45] Methane steam reforming in a zirconia membrane reactor
    Kusakabe, Katsuki
    Mizoguchi, Hitomi
    Eda, Tomokazu
    JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 2006, 39 (04) : 444 - 447
  • [46] Modeling of sorption enhanced steam methane reforming in an adiabatic fixed bed reactor
    Fernandez, J. R.
    Abanades, J. C.
    Murillo, R.
    CHEMICAL ENGINEERING SCIENCE, 2012, 84 : 1 - 11
  • [47] Hydrogen production from two-step steam methane reforming in a fluidized bed reactor
    Go, Kang Seok
    Son, Sung Real
    Kim, Sang Done
    Kang, Kyoung Soo
    Park, Chu Sik
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (03) : 1301 - 1309
  • [48] Mini CHP based on the electrochemical generator and impeded fluidized bed reactor for methane steam reforming
    Dubinin, A. M.
    Shcheklein, S. E.
    Tuponogov, V. G.
    Ershov, M. I.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (29) : 13543 - 13549
  • [49] Modeling of sorption-enhanced steam reforming in a dual fluidized bubbling bed reactor
    Johnsen, Kim
    Grace, John R.
    Elnashaie, Said S. E. H.
    Kolbeinsen, Leiv
    Eriksen, Dag
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2006, 45 (12) : 4133 - 4144
  • [50] Autothermal Reforming of Methane with Integrated CO2 Capture in a Novel Fluidized Bed Membrane Reactor. Part 1: Experimental Demonstration
    F. Gallucci
    M. Van Sint Annaland
    J. A. M. Kuipers
    Topics in Catalysis, 2008, 51 : 133 - 145