Production of hydrogen from fossil fuel:A review

被引:0
作者
Shams ANWAR
Xianguo LI
机构
[1] LaboratoryforFuelCellandGreenEnergy,DepartmentofMechanicalandMechatronicsEngineering,UniversityofWaterloo
基金
加拿大自然科学与工程研究理事会;
关键词
methane; catalytic conversion; natural gas; hydrogen production; CCUS;
D O I
暂无
中图分类号
TK6 [生物能及其利用]; TQ116.2 [氢气]; TQ426 [催化剂(触媒)];
学科分类号
080703 ; 080502 ; 081705 ;
摘要
Production of hydrogen,one of the most promising alternative clean fuels,through catalytic conversion from fossil fuel is the most technically and economically feasible technology.Catalytic conversion of natural gas into hydrogen and carbon is thermodynamically favorable under atmospheric conditions.However,using noble metals as a catalyst is costly for hydrogen production,thus mandating non-noble metal-based catalysts such as Ni,Co,and Cu-based alloys.This paper reviews the various hydrogen production methods from fossil fuels through pyrolysis,partial oxidation,autothermal,and steam reforming,emphasizing the catalytic production of hydrogen via steam reforming of methane.The multicomponent catalysts composed of several nonnoble materials have been summarized.Of the Ni,Co,and Cu-based catalysts investigated in the literature,Ni/Al2O3catalyst is the most economical and performs best because it suppresses the coke formation on the catalyst.To avoid carbon emission,this method of hydrogen production from methane should be integrated with carbon capture,utilization,and storage(CCUS).Carbon capture can be accomplished by absorption,adsorption,and membrane separation processes.The remaining challenges,prospects,and future research and development directions are described.
引用
收藏
页码:585 / 610
页数:26
相关论文
共 172 条
  • [31] State-of-the-art adsorption and membrane separation processes for hydrogen production in the chemical and petrochemical industries
    Ritter, James A.
    Ebner, Armin D.
    [J]. SEPARATION SCIENCE AND TECHNOLOGY, 2007, 42 (06) : 1123 - 1193
  • [32] The effect of ceria content on the properties of Pd/CeO 2 /Al 2 O 3 catalysts for steam reforming of methane.[J].L.S.F. Feio;C.E. Hori;S. Damyanova;F.B. Noronha;W.H. Cassinelli;C.M.P. Marques;J.M.C. Bueno.Applied Catalysis A; General.2006, 1
  • [33] Impact of group VI metals addition to Co/MgO catalyst for non-oxidative decomposition of methane into CO x -free hydrogen and carbon nanotubes.[J].Ahmed E. Awadallah;Ateyya A. Aboul-Enein;Ahmed K. Aboul-Gheit.Fuel.2014,
  • [34] Perspective on hydrogen energy carrier and its automotive applications
    Cipriani, Giovanni
    Di Dio, Vincenzo
    Genduso, Fabio
    La Cascia, Diego
    Liga, Rosario
    Miceli, Rosario
    Galluzzo, Giuseppe Ricco
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (16) : 8482 - 8494
  • [35] Comparative assessment of hydrogen production methods from renewable and non-renewable sources
    Acar, Canan
    Dincer, Ibrahim
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (01) : 1 - 12
  • [36] Assessment of CO2 capture options from various points in steam methane reforming for hydrogen production
    Soltani, R.
    Rosen, M. A.
    Dincer, I.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (35) : 20266 - 20275
  • [37] Catalytic activity and characterizations of Ni/K 2 Ti x O y –Al 2 O 3 catalyst for steam methane reforming.[J].So Yun Lee;Hankwon Lim;Hee Chul Woo.International Journal of Hydrogen Energy.2014, 31
  • [38] The effect of copper content on the reactivity of Cu/Co6Al2 solids in the catalytic steam reforming of methane reaction
    Homsi, Doris
    Aouad, Samer
    Gennequin, Cedric
    El Nakat, John
    Aboukais, Antoine
    Abi-Aad, Edmond
    [J]. COMPTES RENDUS CHIMIE, 2014, 17 (05) : 454 - 458
  • [39] Activity and coke formation of nickel and nickel carbide in dry reforming: A deactivation scheme from density functional theory.[J].Ziyun Wang;X.-M. Cao;Jinghao Zhu;P. Hu.Journal of Catalysis.2014,
  • [40] Effect of gold on a NiLaO 3 perovskite catalyst for methane steam reforming.[J].S. Palma;L.F. Bobadilla;A. Corrales;S. Ivanova;F. Romero-Sarria;M.A. Centeno;J.A. Odriozola.Applied Catalysis B: Environmental.2014,