Beneficial effects of the use of a nickel membrane reactor for the dry reforming of methane: Comparison with thermodynamic predictions

被引:57
|
作者
Haag, Stephane [1 ]
Burgard, Michel [1 ]
Ernst, Barbara [1 ]
机构
[1] Univ Strasbourg 1, Ecole Europeenne Chim Polymeres Mat, Lab Proced Separat, IPHS,DSA, F-67087 Strasbourg, France
关键词
nickel; membrane reactor; hydrogen permselectivity; dry methane reforming; thermodynamic prediction;
D O I
10.1016/j.jcat.2007.09.022
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The development of a nickel composite membrane with acceptable hydrogen permselectivity at high temperature in a membrane reactor for the highly endothermic dry reforming of methane reaction was the purpose of this work. A thin, catalytically inactive nickel layer, deposited by electroless plating on asymmetric porous alumina, behaved simply as a selective hydrogen extractor, shifting the equilibrium in the direction of a higher hydrogen production and methane conversion. The main advantage of such a nickel/ceramic membrane reactor is the elimination or limitation of the side reverse water gas shift reaction. For a Ni/Al2O3 catalyst, containing free Ni particles, normally sensitive to coking, the use of the membrane reactor allowed an important reduction of carbon deposition (nanotubes) due to restriction of the Boudouard reaction. For a NiCo/Al2O3 catalyst, where the metallic nickel phase was stabilized by the alumina, the selective removal of the hydrogen significantly enhanced both methane conversion (+67% at 450 degrees C, +22% at 500 degrees C and 18% at 550 degrees C) and hydrogen production (+42% at 450 degrees C, +32% at 500 degrees C and +22% at 550 degrees C compared to the results obtained for a packed-bed reactor. The hydrogen selectivity during the catalytic tests at 550 degrees C, maintained with constant separation factors (7 for H-2/CH4, 8 for H-2/CO and 10 for H-2/CO2), higher than Knudsen values, attested to the high thermal stability of the nickel composite membrane. (C) 2007 Elsevier Inc. All rights reserved.
引用
收藏
页码:190 / 204
页数:15
相关论文
共 50 条
  • [21] Thermodynamic and molecular dynamics study of methane dry reforming
    Zou, Qingsong
    Li, Kejiang
    He, Xiangyu
    Conejo, Alberto N.
    Zhang, Jianliang
    Jiang, Chunhe
    Liang, Zeng
    Yang, Zonghao
    Journal of the Energy Institute, 2024, 117
  • [22] Catalytic Nonthermal Plasma Reactor for Dry Reforming of Methane
    Mahammadunnisa, Sk
    Reddy, P. Manoj Kumar
    Ramaraju, B.
    Subrahmanyam, Ch
    ENERGY & FUELS, 2013, 27 (08) : 4441 - 4447
  • [23] Nanoporous Nickel Composite Catalyst for the Dry Reforming of Methane
    Fujita, Takeshi
    Peng, Xiaobo
    Yamaguchi, Akira
    Cho, Yohei
    Zhang, Yongzheng
    Higuchi, Kimitaka
    Yamamoto, Yuta
    Tokunaga, Tomoharu
    Arai, Shigeo
    Miyauchi, Masahiro
    Abe, Hideki
    ACS OMEGA, 2018, 3 (12): : 16651 - 16657
  • [24] Methane Dry Reforming over Nickel Perovsikite Catalysts
    de Caprariis, Benedetta
    De Filippis, Paolo
    Petrullo, Antonietta
    Scarsella, Marco
    ICHEAP12: 12TH INTERNATIONAL CONFERENCE ON CHEMICAL & PROCESS ENGINEERING, 2015, 43 : 991 - 996
  • [25] Properties of methane autothermal reforming to generate hydrogen in membrane reactor based on thermodynamic equilibrium model
    Yan, Yunfei
    Li, Haojie
    Li, Lixian
    Zhang, Li
    Zhang, Jie
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2018, 125 : 311 - 317
  • [26] Modeling of a Nickel-based Fluidized Bed Membrane Reactor for Steam Methane Reforming Process
    Pasha, Mustafa Kamal
    Ahmad, Iftikhar
    Mustafa, Jawad
    Kano, Manabu
    JOURNAL OF THE CHEMICAL SOCIETY OF PAKISTAN, 2019, 41 (02): : 219 - 229
  • [27] Coke formation over a nickel catalyst under methane dry reforming conditions:: Thermodynamic and kinetic models
    Ginsburg, JM
    Piña, J
    El Solh, T
    de Lasa, HI
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2005, 44 (14) : 4846 - 4854
  • [28] Dry reforming of methane in contactor and distributor membrane reactors
    Bucharkina, T. V.
    Gavrilova, N. N.
    Kryzhanovskiy, A. S.
    Skudin, V. V.
    Shulmin, D. A.
    PETROLEUM CHEMISTRY, 2015, 55 (10) : 932 - 939
  • [29] Dry reforming of methane on porous membrane catalytic systems
    Tsodikov, M. V.
    Teplyakov, V. V.
    Fedotov, A. S.
    Kozitsyna, N. Yu.
    Bychkov, V. Yu.
    Korchak, V. N.
    Moiseev, I. I.
    RUSSIAN CHEMICAL BULLETIN, 2011, 60 (01) : 55 - 62
  • [30] On the applicability of membrane technology to the catalysed dry reforming of methane
    Ferreira-Aparicio, P
    Rodríguez-Ramos, I
    Guerrero-Ruiz, A
    APPLIED CATALYSIS A-GENERAL, 2002, 237 (1-2) : 239 - 252