Kinetic and modelling study of methane steam reforming over sulfide nickel catalyst on a gamma alumina support [An article from: Chemical Engineering Journal]
Book Details
Author(s)D.L. Hoang, S.H. Chan, O.L. Ding
PublisherElsevier
ISBN / ASINB000RR82YM
ISBN-13978B000RR82Y6
MarketplaceFrance 🇫🇷
Description
This digital document is a journal article from Chemical Engineering Journal, published by Elsevier in . The article is delivered in HTML format and is available in your Amazon.com Media Library immediately after purchase. You can view it with any web browser.
Description:
Kinetics and modelling of methane steam reforming over sulfide nickel catalyst on alumina support is studied. Extensive experiments are firstly carried out to study the performance of the steam reforming process and to determine its kinetic data. The results demonstrate that the reforming performance is strongly affected by temperature and ratio of steam to methane. The favourable condition for high hydrogen production, high reforming efficiency and relatively low carbon monoxide concentration is at steam to methane ratio of 3-3.5 and temperature of around 1073K. Below this temperature value, the methane conversion rate is approximately proportional to the residence time in the studied range. Two-dimensional model of catalytic fixed bed reformer is developed with a system of partial differential equations describing the conservations for mass and energy using kinetic data determined from the current experiment. The modelling results are successfully validated with experimental data.
Description:
Kinetics and modelling of methane steam reforming over sulfide nickel catalyst on alumina support is studied. Extensive experiments are firstly carried out to study the performance of the steam reforming process and to determine its kinetic data. The results demonstrate that the reforming performance is strongly affected by temperature and ratio of steam to methane. The favourable condition for high hydrogen production, high reforming efficiency and relatively low carbon monoxide concentration is at steam to methane ratio of 3-3.5 and temperature of around 1073K. Below this temperature value, the methane conversion rate is approximately proportional to the residence time in the studied range. Two-dimensional model of catalytic fixed bed reformer is developed with a system of partial differential equations describing the conservations for mass and energy using kinetic data determined from the current experiment. The modelling results are successfully validated with experimental data.
