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One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor

Hydrogen production via chemical looping steam methane reforming (CL-SMR) is among the most promising current technologies. This work presents the development in gPROMS Model Builder 4.1.0(®) of a 1D model of an adiabatic packed bed reactor used for chemical looping reforming (CLR). The catalyst use...

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Autores principales: Qayyum, Haris, Cheema, Izzat Iqbal, Abdullah, Mohsin, Amin, Muhammad, Khan, Imtiaz Afzal, Lee, Eui-Jong, Lee, Kang Hoon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10694241/
http://dx.doi.org/10.3389/fchem.2023.1295455
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author Qayyum, Haris
Cheema, Izzat Iqbal
Abdullah, Mohsin
Amin, Muhammad
Khan, Imtiaz Afzal
Lee, Eui-Jong
Lee, Kang Hoon
author_facet Qayyum, Haris
Cheema, Izzat Iqbal
Abdullah, Mohsin
Amin, Muhammad
Khan, Imtiaz Afzal
Lee, Eui-Jong
Lee, Kang Hoon
author_sort Qayyum, Haris
collection PubMed
description Hydrogen production via chemical looping steam methane reforming (CL-SMR) is among the most promising current technologies. This work presents the development in gPROMS Model Builder 4.1.0(®) of a 1D model of an adiabatic packed bed reactor used for chemical looping reforming (CLR). The catalyst used for this process was 18 wt. % NiO with the support of Al(2)O(3). A brief thermodynamic analysis using Chemical Equilibrium Application (CEA) was carried out to identify the optimum operating conditions. The model was simulated for 10 complete CL-SMR cycles. The effects of variations in temperature, pressure, gas mass velocity, nickel oxide concentration, reactor length, and particle diameter were studied to investigate the performance of the CL-SMR process under these variations. A parametric analysis was carried out for different ranges of conditions: temperatures from 600 to 1,000 K, pressure from 1 to 5 bar, gas mass velocity between 0.5 and 0.9 kg·m(−2) s(−1), nickel oxide concentration values between 0.1 and 1 mol·m(−3), particle diameters between 0.7 and 1 mm, and fuel reactor (FR) lengths between 0.5 and 1.5 m. At the optimum temperature (950 K), pressure (1 bar), and steam-to-carbon molar ratio (3/1), with an increase in particle diameter from 0.7 to 1 mm, an 18% decrease in methane conversion and a 9.5% increase in hydrogen yield were observed. Similarly, with an increase in FR length from 0.5 m to 1.5 m, a delay in the temperature drop was observed.
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spelling pubmed-106942412023-12-05 One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor Qayyum, Haris Cheema, Izzat Iqbal Abdullah, Mohsin Amin, Muhammad Khan, Imtiaz Afzal Lee, Eui-Jong Lee, Kang Hoon Front Chem Chemistry Hydrogen production via chemical looping steam methane reforming (CL-SMR) is among the most promising current technologies. This work presents the development in gPROMS Model Builder 4.1.0(®) of a 1D model of an adiabatic packed bed reactor used for chemical looping reforming (CLR). The catalyst used for this process was 18 wt. % NiO with the support of Al(2)O(3). A brief thermodynamic analysis using Chemical Equilibrium Application (CEA) was carried out to identify the optimum operating conditions. The model was simulated for 10 complete CL-SMR cycles. The effects of variations in temperature, pressure, gas mass velocity, nickel oxide concentration, reactor length, and particle diameter were studied to investigate the performance of the CL-SMR process under these variations. A parametric analysis was carried out for different ranges of conditions: temperatures from 600 to 1,000 K, pressure from 1 to 5 bar, gas mass velocity between 0.5 and 0.9 kg·m(−2) s(−1), nickel oxide concentration values between 0.1 and 1 mol·m(−3), particle diameters between 0.7 and 1 mm, and fuel reactor (FR) lengths between 0.5 and 1.5 m. At the optimum temperature (950 K), pressure (1 bar), and steam-to-carbon molar ratio (3/1), with an increase in particle diameter from 0.7 to 1 mm, an 18% decrease in methane conversion and a 9.5% increase in hydrogen yield were observed. Similarly, with an increase in FR length from 0.5 m to 1.5 m, a delay in the temperature drop was observed. Frontiers Media S.A. 2023-11-20 /pmc/articles/PMC10694241/ http://dx.doi.org/10.3389/fchem.2023.1295455 Text en Copyright © 2023 Qayyum, Cheema, Abdullah, Amin, Khan, Lee and Lee. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Qayyum, Haris
Cheema, Izzat Iqbal
Abdullah, Mohsin
Amin, Muhammad
Khan, Imtiaz Afzal
Lee, Eui-Jong
Lee, Kang Hoon
One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
title One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
title_full One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
title_fullStr One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
title_full_unstemmed One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
title_short One-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
title_sort one-dimensional modeling of heterogeneous catalytic chemical looping steam methane reforming in an adiabatic packed bed reactor
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10694241/
http://dx.doi.org/10.3389/fchem.2023.1295455
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