Catalytic steam reforming of acetic acid in a fluidized bed reactor with oxygen addition (Reprinted from Int J Hydrogen Energy, vol 33, pg 4387-96, 2008)

被引:63
作者
Medrano, J. A. [1 ]
Oliva, M. [1 ]
Ruiz, J. [1 ]
Garcia, L. [1 ]
Arauzo, J. [1 ]
机构
[1] Univ Zaragoza, GPT, Aragon Inst Engn Res 13A, Zaragoza 50018, Spain
关键词
Steam reforming; Acetic acid; Pyrolysis liquids; Oxygen addition; Fluidized bed; Nickel catalyst; FAST-PYROLYSIS; NI CATALYSTS; BIO-OIL; PARTIAL OXIDATION; MODEL COMPOUNDS; BIOMASS; METHANE; ETHANOL; COMPOUND; GAS;
D O I
10.1016/j.ijhydene.2008.05.023
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
Catalytic steam reforming of bio-oil is a promising process for producing hydrogen in a sustainable environmentally friendly way that can improve the utilization of local resources (natural sources or wastes). However, there remain drawbacks such as coke formation that produce operational problems and deactivation of the catalysts. Coprecipitated Ni/Al catalysts are here used in a fluidized bed for reforming at 650 degrees C of acetic acid as a model compound of bio-oil-aqueous fraction. Different strategies are applied in order to study their effects on the catalytic steam reforming process: modification of the catalyst by increasing the calcination temperature or adding promoters such as calcium. The addition of small quantities of oxygen is also tested resulting in an optimum percentage to achieve a high carbon conversion process with less coke and without a hydrogen yield penalty production. The results for catalytic steam reforming are compared with other ones from literature. (C) 2008 International Association for Hydrogen Energy. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:7065 / 7074
页数:10
相关论文
共 36 条
[11]   Hydrogen by catalytic steam reforming of liquid byproducts from biomass thermoconversion processes [J].
Czernik, S ;
French, R ;
Feik, C ;
Chornet, E .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2002, 41 (17) :4209-4215
[12]  
Diebold J. P., NRELSR57027613
[13]   Hydrogen production by steam reforming of bio-oil using coprecipitated Ni-Al catalysts.: Acetic acid as a model compound [J].
Galdámez, JR ;
García, L ;
Bilbao, R .
ENERGY & FUELS, 2005, 19 (03) :1133-1142
[14]   Catalytic steam gasification of pine sawdust.: Effect of catalyst weight/biomass flow rate and steam/biomass ratios on gas production and composition [J].
García, L ;
Salvador, ML ;
Arauzo, J ;
Bilbao, R .
ENERGY & FUELS, 1999, 13 (04) :851-859
[15]   Catalytic steam reforming of bio-oils for the production of hydrogen: effects of catalyst composition [J].
Garcia, L ;
French, R ;
Czernik, S ;
Chornet, E .
APPLIED CATALYSIS A-GENERAL, 2000, 201 (02) :225-239
[16]   Influence of calcination and reduction conditions on the catalyst performance in the pyrolysis process of biomass [J].
Garcia, L ;
Salvador, ML ;
Bilbao, R ;
Arauzo, J .
ENERGY & FUELS, 1998, 12 (01) :139-143
[17]   Equilibrium modelling of catalytic steam reforming of methane in membrane reactors with oxygen addition [J].
Grace, JR ;
Li, X ;
Lim, CJ .
CATALYSIS TODAY, 2001, 64 (3-4) :141-149
[18]   Investigation of steam reforming of acetic acid to hydrogen over Ni-Co metal catalyst [J].
Hu, Xun ;
Lu, Gongxuan .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2007, 261 (01) :43-48
[19]   Design of stable Ni catalysts for partial oxidation of methane to synthesis gas [J].
Lu, Y ;
Liu, Y ;
Shen, SK .
JOURNAL OF CATALYSIS, 1998, 177 (02) :386-388
[20]   Hydrogen from biomass:: Steam reforming of model compounds of fast-pyrolysis oil [J].
Marquevich, M ;
Czernik, S ;
Chornet, E ;
Montané, D .
ENERGY & FUELS, 1999, 13 (06) :1160-1166