Hydrogen Production from Coke Oven Gas by Methane Reforming: Thermodynamic Analysis and Experimental Study

被引:9
|
作者
Yang Zhi-Bin [1 ]
Zhang Yu-Wen [1 ]
Zhang Yun-Yan [1 ]
Ding Wei-Zhong [1 ]
Shen Pei-Jun [1 ]
Liu Yong [1 ]
Zhou Yu-Ding [1 ]
Huang Shao-Qing [1 ]
机构
[1] Shanghai Univ, Shanghai Key Lab Modern Met & Mat Proc, Shanghai 200072, Peoples R China
基金
国家高技术研究发展计划(863计划);
关键词
Coke oven gas; Hydrogen; Thermodynamic analysis; Mixed-conducting membrane reactor; NiO/MgO solid solution catalyst; PARTIAL OXIDATION; MEMBRANE; STEAM;
D O I
10.3866/PKU.WHXB20100212
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
A thermodynamic analysis of the partial oxidation of methane (POM) in coke oven gas (COG) was carried out. The optimized conditions were CH4/O-2 molar ratios of 1.7-2.1 and reaction temperatures of 825-900 degrees C. We obtained CH4 conversions of 91.0%-99.9%, H-2 selectivity of 87.0%-93.4%, and CO selectivity of 100%-107% at 1.01x10(5) Pa. The effect of H-2 in the COG on the performance of POM was also investigated between 825 and 900 degrees C. The optimized volume ratio of steam addition was 2%-4% and the molar ratio of CH4/O-2 was 2 at 1.01x10(5) Pa and 825-900 degrees C. A maximum conversion rate of 98.6% was achieved for CH4 using COG, while the maximum selectivities of H-2 and CO were 96.4% and 107%, respectively. The amount of hydrogen obtained after reforming was doubled despite a thermal consumption of only 2.94 J.mol(-1) for the COG. The performance of a NiO/MgO solid solution catalyst packed on a BaCo0.7Fe0.2Nb0.1O3-delta (BCFNO) membrane reactor was also investigated for the POM in COG. The reforming process was successfully performed. At 875 degrees C, 95% CH4 conversion, 80.5% H-2 selectivity, and 106% CO selectivity at an oxygen permeation flux of 16.3 mL.cm(-2).min(-1) were achieved. The results for POM reforming in COG on the membrane reactor were consistent with the thermodynamic analysis. The NiO/MgO solid solution catalyst, therefore, has good activity and is suitable for application in hydrogen production.
引用
收藏
页码:350 / 358
页数:9
相关论文
共 50 条
  • [31] Thermodynamic analysis of hydrogen production from methane via autothermal reforming and partial oxidation followed by water gas shift reaction
    Chen, Wei-Hsin
    Lin, Mu-Rong
    Lu, Jau-Jang
    Chao, Yu
    Leu, Tzong-Shyng
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (21) : 11787 - 11797
  • [32] Thermodynamic analysis of autothermal reforming of methane via entropy maximization: Hydrogen production
    de Souza, Thiago Leandro
    Rodrigues da Silva Rossi, Carla de Cassia
    Alonso, Christian Goncalves
    Guirardello, Reginaldo
    Cabral, Vladimir Ferreira
    Camargo Fernandes-Machado, Nadia Regina
    Specchia, Stefania
    Zabaloy, Marcelo Santiago
    Cardozo-Filho, Lucio
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (16) : 8257 - 8270
  • [33] Steam, dry and autothermal methane reforming for hydrogen production: A thermodynamic equilibrium analysis
    Carapellucci, Roberto
    Giordano, Lorena
    JOURNAL OF POWER SOURCES, 2020, 469
  • [34] Kinetic model on coke oven gas with steam reforming
    张家元
    周孑民
    闫红杰
    JournalofCentralSouthUniversityofTechnology, 2008, (01) : 127 - 131
  • [35] Steel slag-enhanced reforming process for blue hydrogen production from coke oven gas: Techno-economic evaluation
    Guo, Rui
    Li, Leiming
    Chang, Chenggong
    Di, Zichen
    JOURNAL OF CLEANER PRODUCTION, 2022, 379
  • [36] Hydrogen production from methane reforming: Thermodynamic assessment and autothermal reactor design
    Avila-Neto, C. N.
    Dantas, S. C.
    Silva, F. A.
    Franco, T. V.
    Romanielo, L. L.
    Hori, C. E.
    Assis, A. J.
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2009, 1 (06) : 205 - 215
  • [37] Kinetic model on coke oven gas with steam reforming
    Jia-yuan Zhang
    Jie-min Zhou
    Hong-jie Yan
    Journal of Central South University of Technology, 2008, 15 : 127 - 131
  • [38] Kinetic model on coke oven gas with steam reforming
    Zhang Jia-yuan
    Zhou Jie-min
    Yan Hong-jie
    JOURNAL OF CENTRAL SOUTH UNIVERSITY OF TECHNOLOGY, 2008, 15 (01): : 127 - 131
  • [39] Thermodynamic analysis of glycerol dry reforming for hydrogen and synthesis gas production
    Wang, Xiaodong
    Li, Maoshuai
    Wang, Meihua
    Wang, Hao
    Li, Shuirong
    Wang, Shengping
    Ma, Xinbin
    FUEL, 2009, 88 (11) : 2148 - 2153
  • [40] Optimization of the hydrogen production process coupled with membrane separation and steam reforming from coke oven gas using the response surface methodology
    Han, Xiaoyi
    Cheng, Andi
    Wu, Xuemei
    Ruan, Xuehua
    Wang, Hanli
    Jiang, Xiaobin
    He, Gaohong
    Xiao, Wu
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (67) : 26238 - 26250