Thermogravimetric Analysis of Copper Oxide for Chemical-Looping Hydrogen Generation

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The chemical-looping hydrogen generation (CLH) system consists of reduction of metal oxide and water decomposition by oxidizing reduced metal oxide. In the present study, water decomposition by the reduction and oxidation of metal oxide (CuO) was conducted in a thermogravimetric analysis (TGA) system for the CLH process. The particles are reduced completely in an atmosphere of synthesis gas (H(2) + CO), and the fully reduced particles decompose water to produce 3.7 L of H(2) per kilogram of metal oxide. The particles prepared by the impregnation exhibits better reactivity than those by coprecipitation and the solid phase method, and the particles supported on Al(2)O(3) exhibit better reactivity than those on SiO(2). Based on the TGA, the reduction and oxidation of CuO/Al(2)O(3) prepared via impregnation are characterized by the kinetic equations from the solid-state reaction rate models. The phase-controlled-boundary model was successfully applied to predict the initial stages of reduction and oxidation of the metal oxide, and the activation energies for reduction and oxidation are determined to be 4.13-19.5 and -55.8 kJ/mol, respectively.
Publisher
Amer Chemical Soc
Issue Date
2009-01
Language
English
Article Type
Article
Keywords

OXYGEN CARRIERS; H-2 GENERATION; FLUIDIZED-BED; REDOX PROCESS; CO2 CAPTURE; COMBUSTION; WATER; REDUCTION; SYSTEM; KINETICS

Citation

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, v.48, no.1, pp.380 - 387

ISSN
0888-5885
DOI
10.1021/ie800174c
URI
http://hdl.handle.net/10203/93961
Appears in Collection
CBE-Journal Papers(저널논문)
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