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http://dx.doi.org/10.7316/KHNES.2013.24.2.113

Numerical Analysis of Steam-methane Reforming Reaction for Hydrogen Generation using Catalytic Combustion  

Lee, Jeongseop (Grad. School of Chungnam National Univ.)
Lee, Kanghoon (Grad. School of Chungnam National Univ.)
Yu, Sangseok (School of Mechanical Engineering, Chungnam National Univ.)
Ahn, Kookyoung (KIMM)
Kang, Sanggyu (KIMM)
Publication Information
Transactions of the Korean hydrogen and new energy society / v.24, no.2, 2013 , pp. 113-120 More about this Journal
Abstract
A steam reformer is a chemical reactor to produce high purity hydrogen from fossil fuel. In the steam reformer, since endothermic steam reforming is heated by exothermic combustion of fossil fuel, the heat transfer between two reaction zones dominates conversion of fossil fuel to hydrogen. Steam Reforming is complex chemical reaction, mass and heat transfer due to the exothermic methane/air combustion reaction and the endothermic steam reforming reaction. Typically, a steam reformer employs burner to supply appropriate heat for endothermic steam reforming reaction which reduces system efficiency. In this study, the heat of steam reforming reaction is provided by anode-off gas combustion of stationary fuel cell. This paper presents a optimization of heat transfer effect and average temperature of cross-section using two-dimensional models of a coaxial cylindrical reactor, and analysis three-dimensional models of a coaxial cylindrical steam reformer with chemical reaction. Numerical analysis needs to dominant chemical reaction that are assumed as a Steam Reforming (SR) reaction, a Water-Gas Shift (WGS) reaction, and a Direct Steam Reforming(DSR) reaction. The major parameters of analysis are temperature, fuel conversion and heat flux in the coaxial reactor.
Keywords
Steam reforming reaction; Combustion; Heat transfer; Computational fluid dynamics;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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