Hydrogen production by steam reforming of acetic acid and bio-oil using Ni/γ-Al2O3 catalysts
Abstract
Keywords: hydrogen, bio-oil, Ni/γ-Al2O3 catalyst, steam reforming, acetic acid
DOI: 10.3965/j.ijabe.20150806.1277
Citation: Li Y M, Fu P, Yi W M, Bai X Y. Hydrogen production by steam reforming of acetic acid and bio-oil using Ni/γ-Al2O3 catalysts. Int J Agric & Biol Eng, 2015; 8(6): 69-76.
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Nashawi I S, Malallah A, Al-Bisharah M. Forecasting world crude oil production using multicyclic hubbert model.
Energy Fuels, 2010; 24: 1788−800.
Sorrell S, Speirs J, Bentley R, Brandt A, Miller R. Global oil depletion: A review of the evidence. Energy Policy, 2010; 38: 5290−5295.
Nogueira F G E, Assaf P G M, Carvalho H W P,,Assaf E M. Catalytic steam reforming of acetic acid as a model compound of bio-oil. Applied Catalysis B: Environmental, 2014; 160(7): 188−199.
Wang G H. Introduction of new energy. Beijing: Chemical Industry Press, 2006.
Levin D B, Chahine R. Challenges for renewable hydrogen production from biomass. Intl. J Hydrogen Energy, 2010; 35(10): 4962−4969.
Report Code: EP 1708Global hydrogen generation market by merchant & capitive type, distributed & centralized generation, application & technology-trends & forecasts (2011-2016). Markets and Markets; 2011.
Department of Energy of the United States of America. Energy efficiency & renewable energy. Hydrogen production technology, http://www1.eere.energy.gov/ hydrogenandfuelscells/production/natural_gas.hltm.
Fu P, Yi W M, Li Z H, Bai X Y, Zhang A D, Li Y M. Investigation on hydrogen production by catalytic steam reforming of maize stalk fast pyolysis bio-oil. Intl. J Hydrogen Energy, 2014; 39(26): 13962−139671.
Wang S R, Cai Q J, Zhang F, Li X B, Zhang L, Luo Z Y. Hydrogen production via catalytic reforming of the bio-oil model compounds: Acetic acid, phenol and hydroxyacetone. Intl. J Hydrogen Energy, 2014; 39(32): 18675−18687.
Ni M, Leunng D, leung M. A review on reforming bio-ethanol for hydrogen production. Intl. J Hydrogen Energy, 2007; 32: 3238−3247.
Bimbela F, Oliva M, Gacia L, Ruiz J, Arauzo J. Hydrogen production by catalytic steam reforming of acetic acid, a model compound of biomass pyrolysis liquids. Journal of Analytical and Applied Pyrolysis, 2007; 79(1): 112−120.
Basagiannis A C, Verykios X E. Reforming reaction of acetic acid on nickel catalysts over a wide temperature range. Applied Catalysis A: General, 2006; 308: 182−193.
Fatsikostas A N, Verykios X E. Reaction network of steam reforming of ethanol over Ni-based catalysts. Journal of Catalysis, 2004; 225:439−452.
Wu C, Liu R H. Carbon deposition behavior in steam reforming of bio-oil model compound for hydrogen production. Intl. J Hydrogen Production, 2010; 35: 7386−7398.
Bimbela F, Oliva M, Gacia L, Ruiz J, Arauzo J. Catalytic steam reforming of model compounds of biomass pyrolysis liquids in fixed bed. Journal of Analytical and Applied Pyrolysis, 2009; 85(1): 204−213.
Trane R, Dahl S, Skjth-Rasmussm M S, Jensen A D. Catalytic steam reforming of bio-oil. Intl. J Hydrogen Energy, 2012; 37(8): 6447−6472.
Perego C, Villa P P. Catalyst preparation methods. Catal Today, 1997; 34: 281−305.
Fatsikostas A N, Kondarides D I, Verykios X E. Production of hydrogen for fuel cells by reformation of biomass-derived ethanol. Catal Today, 2002; 75: 145−155.
Hu X, Lu G X. Investigation of the steam reforming of a series of model compounds derived from bio-oil for hydrogen production. Applied Catalysis B: Environmental, 2009; 88(3-4): 376−385.
Thaicharoensutcharittham S, Meeyoo V, Kitiyanan B, Rangsunvigit P, Rirksomboon T. Hydrogen production by steam reforming of acetic acid over Ni-based catalysts. Catal Today, 2011; 164(1): 257−261.
Pant K K, Mohanty P, Agarwal S, Dalai A K. Steam reforming of acetic acid for hydrogen production over bifunctional Ni–Co catalysts. Catal Today, 2013; 207: 36−43.
Hu X, Lu G X. Acetic acid steam reforming to hydrogen over Co–Ce/Al2O3 and Co–La/Al2O3 catalysts—the promotion effect of Ce and La addition. Catal Communications, 2010; 12(1): 50−53.
Hu X, Zhang L J, Lu G X. Pruning of the surface species on Ni/Al2O3 catalyst to selective production of hydrogen via acetone and acetic acid steam reforming. Applied Catalysis A: Gernal, 2012; 427: 49−57.
Vagia E C, Lemonidou A A. Hydrogen production via steam reforming of bio-oil components over calcium aluminate supported nickel and noble metal catalysts.
Applied Catalysis A: Gernal, 2008; 351(1): 111−121.
Li Z K, Hu X, Zhang L J, Lu G X. Renewable hydrogen production by a mild-temperature steam reforming of the model compound acetic acid derived from bio-oil. Journal of Molecular Catalysis A: Chemical, 2012; 355: 123−133.
Garcia L, French R, Czernik S, Chornet E. Catalytic steam reforming of bio-oils for the production of hydrogen: effects of catalyst composition. Applied Catalysis A: Gerneral, 2000; 201: 225−239.
Hou T, Yuan L X, Ye T Q, Gong L, Tu J. Hydrogen production by low-temperature reforming of organic compounds in bio-oil over a CNT-promoting Ni catalyst. Intl. J Hydrogen Energy, 2009; 34 (22): 9095−9107.
Basagiannis A C, Verykios X E. Catalytic steam reforming of acetic acid for hydrogen production. Intl. J Hydrogen Energy, 2007; 32 (15): 3343−3355.
Goyal N, Pant K K, Gupta R. Hydrogen by steam reforming of model bio-oil using structured Ni/γ-Al2O3 catalysts. Intl. J Hydrogen Energy, 2013; 38: 921−933.
Hajjaji N, Pons M. Hydrogen production via steam and autothermal reforming of beef tallow: a thermodynamic investigation. Intl. J Hydrogen Energy, 2013; 38(15): 2199−2211.
Cheng C K, Foo S Y, Adesina A A. Thermodynamic analysis of glycerol-steam reforming in the presence of CO2 or H2 as carbon gasifying agent. Intl. J Hydrogen Energy, 2012; 37(13): 10101−10110.
Wang J H, Chen H, Tian Y, Yao M F, Li Y D. Thermodynamic analysis of hydrogen production for fuel cells from oxidative steam reforming of methanol. Fuel, 2012; 97: 805−811.
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