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Modeling of fluidized bed membrane reactors for hydrogen production from steam methane reforming with Aspen Plus

TitleModeling of fluidized bed membrane reactors for hydrogen production from steam methane reforming with Aspen Plus
Publication TypeJournal Article
Year of Publication2009
AuthorsYe GY, Xie DL, Qiao WY, Grace JR, Lim CJ
JournalInternational Journal of Hydrogen Energy
Volume34
Pagination4755-4762
Date PublishedJun
Type of ArticleArticle
ISBN Number0360-3199
Accession Numberhttp://apps.isiknowledge.com/InboundService.do?Func=Frame&product=WOS&action=retrieve&SrcApp=EndNote&Init=Yes&SrcAuth=ResearchSoft&mode=FullRecord&UT=000267562100008
KeywordsAspen Plus, Fluidized bed membrane reactor, hydrogen production, MODEL, OXYGEN ADDITION, palladium
Abstract

Hydrogen production via steam methane reforming with in situ hydrogen separation in fluidized bed membrane reactors was simulated with Aspen Plus. The fluidized bed membrane reactor was divided into several successive steam methane sub-reformers and membrane sub-separators. The Gibbs minimum free energy sub-model in Aspen Plus was employed to simulate the steam methane reforming process in the sub-reformers. A FORTRAN sub-routine was integrated into Aspen Plus to simulate hydrogen permeation through membranes in the sub-separator based on Sieverts' law. Model predictions show satisfactory agreement with experimental data in the literature. The influences of reactor pressure, temperature, steam-to-carbon ratio, and permeate side hydrogen partial pressure on reactor performances were investigated with the model. Extracting hydrogen in situ is shown to shift the equilibrium of steam methane reactions forward, removing the thermodynamic bottleneck, and improving hydrogen yield while neutralizing, or even reversing, the adverse effect of pressure. (C) 2009 International Association for Hydrogen Energy. Published by Elsevier Ltd. All rights reserved.

URLhttp://apps.isiknowledge.com/InboundService.do?Func=Frame&product=WOS&action=retrieve&SrcApp=EndNote&Init=Yes&SrcAuth=ResearchSoft&mode=FullRecord&UT=000267562100008
Alternate JournalInt. J. Hydrog. Energy

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