Hydrogen production by sorption enhanced steam reforming of oxygenated hydrocarbons (ethanol, glycerol, n-butanol and methanol): Thermodynamic modelling

被引:116
|
作者
da Silva, Aline Lima [1 ]
Mueller, Iduvirges Lourdes [1 ]
机构
[1] Univ Fed Rio Grande do Sul, Program Postgrad Studies Min Met & Mat Engn PPGEM, BR-91501970 Porto Alegre, RS, Brazil
关键词
Biofuels; Steam reforming; Sorption enhanced; Hydrogen production; Gibbs energy minimization method; Fuel Cells; OXIDE FUEL-CELLS; BIO-ETHANOL; BIOMASS; TEMPERATURE; PYROLYSIS; CATALYSTS; OIL;
D O I
10.1016/j.ijhydene.2010.11.051
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
Thermodynamic analysis of steam reforming of different oxygenated hydrocarbons (ethanol, glycerol, n-butanol and methanol) with and without CaO as CO2 sorbent is carried out to determine favorable operating conditions to produce high-quality H-2 gas. The results indicate that the sorption enhanced steam reforming (SESR) is a fuel flexible and effective process to produce high-purity H-2 with low contents of CO, CO2 and CH4 in the temperature range of 723-873 K. In addition, the separation of CO2 from the gas phase greatly inhibits carbon deposition at low and moderate temperatures. For all the oxygenated hydrocarbons investigated in this work, thermodynamic predictions indicate that high-purity hydrogen with CO content within 20 ppm required for proton exchange membrane fuel cell (PEMFC) applications can be directly produced by a single-step SESR process in the temperature range of 723-773 K at pressures of 3-5 atm. Thus, further processes involving water-gas shift (WGS) and preferential CO oxidation (COPROX) reactors are not necessary. In the case of ethanol and methanol, the theoretical findings of the present analysis are corroborated by experimental results from literature. In the other cases, the results could provide an indication of the starting point for experimental research. At P = S atm and T = 773 K, it is possible to obtain H-2 at concentrations over 97 mol% along with CO content around 10 ppm and a thermal efficiency greater than 76%. In order to achieve such a reformate composition, the optimized steam-to-fuel molar ratios are 6:1, 9:1, 12:1 and 4:1 for ethanol, glycerol, n-butanol and methanol, respectively, with CaO in the stoichiometric ratio to carbon atom. (C) 2010 Professor T. Nejat Veziroglu. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:2057 / 2075
页数:19
相关论文
共 50 条
  • [41] Thermodynamics of hydrogen production by the steam reforming of butanol: Analysis of inorganic gases and light hydrocarbons
    Nahar, G. A.
    Madhani, S. S.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (01) : 98 - 109
  • [42] Modeling of hydrogen production by sorption enhanced methane steam reforming reactions
    Key Laboratory for Thermal Science and Power Engineering, Department of Thermal Engineering, Tsinghua University, Beijing 100084, China
    Ranliao Huaxue Xuebao/Journal of Fuel Chemistry and Technology, 2008, 36 (01): : 99 - 103
  • [43] Thermodynamic study for hydrogen production from bio-oil via sorption-enhanced steam reforming: Comparison with conventional steam reforming
    Xie, Huaqing
    Yu, Qingbo
    Lu, Han
    Zhang, Yuanyuan
    Zhang, Jianrong
    Qin, Qin
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (08) : 28718 - 28731
  • [44] Sorption-enhanced methanol steam reforming for hydrogen production by combined copper-based catalysts with hydrotalcites
    Qi, Tongyichao
    Yang, Ying
    Wu, Yijiang
    Wang, Jin
    Li, Ping
    Yu, Jianguo
    CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2018, 127 : 72 - 82
  • [45] Thermodynamic analysis of Glycerol Steam Reforming for hydrogen production with in situ hydrogen and carbon dioxide separation
    Silva, Joel M.
    Soria, M. A.
    Madeira, Luis M.
    JOURNAL OF POWER SOURCES, 2015, 273 : 423 - 430
  • [46] Thermodynamic and energy analysis of renewable butanol-ethanol fuel reforming for the production of hydrogen
    Kumar, Brajesh
    Kumar, Shashi
    Kumar, Surendra
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2017, 5 (06): : 5876 - 5890
  • [47] Thermodynamic simulation of hydrogen production from the nano-CaO reactive sorption enhanced biomass steam reforming
    Wang, Jing
    Wu, Su Fang
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 70 : 233 - 240
  • [48] Towards autothermal hydrogen production by sorption-enhanced water gas shift and methanol reforming: A thermodynamic analysis
    Iruretagoyena, Diana
    Hellgardt, Klaus
    Chadwick, David
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (09) : 4211 - 4222
  • [49] Physical-chemical and thermodynamic analyses of ethanol steam reforming for hydrogen production
    Carlos Caetano de Souza, Antonio
    Luz-Silveira, Jose
    Sosa, Maria Isabel
    JOURNAL OF FUEL CELL SCIENCE AND TECHNOLOGY, 2006, 3 (03): : 346 - 350
  • [50] Computational fluid dynamics study of hydrogen production by sorption enhanced steam ethanol reforming process in fluidized bed
    Yu, Hongshi
    Sun, Haoran
    Bao, Guirong
    Liu, Huili
    Hu, Jianhang
    Wang, Hua
    FUEL, 2023, 344