Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization

Dry reforming of methane with carbon dioxide was investigated using oil palm shell activated carbon (OPS-AC) supported cobalt catalyst. The cobalt loaded OPS-AC catalysts were prepared by wet-impregnation method and characterized using SEM, FESEM, BET, TPR and TPD. Surface morphology of OPS-AC suppo...

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Main Authors: Izhab, Izirwan, Asmadi, Mohd., Saidina Amin, Nor Aishah
Format: Article
Published: Elsevier Ltd 2021
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Online Access:http://eprints.utm.my/id/eprint/77456/
http://dx.doi.org/10.1016/j.ijhydene.2020.04.188
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spelling my.utm.774562022-01-31T08:41:48Z http://eprints.utm.my/id/eprint/77456/ Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization Izhab, Izirwan Asmadi, Mohd. Saidina Amin, Nor Aishah TP Chemical technology Dry reforming of methane with carbon dioxide was investigated using oil palm shell activated carbon (OPS-AC) supported cobalt catalyst. The cobalt loaded OPS-AC catalysts were prepared by wet-impregnation method and characterized using SEM, FESEM, BET, TPR and TPD. Surface morphology of OPS-AC supported cobalt catalysts exhibited higher porosity, surface area and micropore volume with different densities of cobalt particles and support. Furthermore, greater amount of H2 chemisorbed and acidity were observed with increasing cobalt contents. Response surface methodology (RSM) was employed to design the experiments based on factorial central composite design. Catalytic testing was performed using a micro reactor system by varying four variables: temperature, gauge pressure, CH4/ CO2 ratio and gas hourly specific velocity (GHSV). H2 and CO yields were analyzed and quantified by gas chromatography with thermal conductivity detector (TCD). Both responses (H2 and CO) yields were optimized simultaneously using desirability function analysis. Reaction temperature was the most influential variable with high desirability prevalent for both responses. The optimum response values of H2 and CO yields corresponded to 903 °C, 0.88 bar(g), CH4/ CO2 = 1.31 and GHSV = 4,488 mL/h.g-catalyst. Elsevier Ltd 2021-07-13 Article PeerReviewed Izhab, Izirwan and Asmadi, Mohd. and Saidina Amin, Nor Aishah (2021) Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization. International Journal of Hydrogen Energy, 46 (48). pp. 24754-24767. ISSN 0360-3199 http://dx.doi.org/10.1016/j.ijhydene.2020.04.188 DOI:10.1016/j.ijhydene.2020.04.188
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TP Chemical technology
spellingShingle TP Chemical technology
Izhab, Izirwan
Asmadi, Mohd.
Saidina Amin, Nor Aishah
Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
description Dry reforming of methane with carbon dioxide was investigated using oil palm shell activated carbon (OPS-AC) supported cobalt catalyst. The cobalt loaded OPS-AC catalysts were prepared by wet-impregnation method and characterized using SEM, FESEM, BET, TPR and TPD. Surface morphology of OPS-AC supported cobalt catalysts exhibited higher porosity, surface area and micropore volume with different densities of cobalt particles and support. Furthermore, greater amount of H2 chemisorbed and acidity were observed with increasing cobalt contents. Response surface methodology (RSM) was employed to design the experiments based on factorial central composite design. Catalytic testing was performed using a micro reactor system by varying four variables: temperature, gauge pressure, CH4/ CO2 ratio and gas hourly specific velocity (GHSV). H2 and CO yields were analyzed and quantified by gas chromatography with thermal conductivity detector (TCD). Both responses (H2 and CO) yields were optimized simultaneously using desirability function analysis. Reaction temperature was the most influential variable with high desirability prevalent for both responses. The optimum response values of H2 and CO yields corresponded to 903 °C, 0.88 bar(g), CH4/ CO2 = 1.31 and GHSV = 4,488 mL/h.g-catalyst.
format Article
author Izhab, Izirwan
Asmadi, Mohd.
Saidina Amin, Nor Aishah
author_facet Izhab, Izirwan
Asmadi, Mohd.
Saidina Amin, Nor Aishah
author_sort Izhab, Izirwan
title Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
title_short Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
title_full Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
title_fullStr Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
title_full_unstemmed Methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
title_sort methane dry reforming using oil palm shell activated carbon supported cobalt catalyst: multi-response optimization
publisher Elsevier Ltd
publishDate 2021
url http://eprints.utm.my/id/eprint/77456/
http://dx.doi.org/10.1016/j.ijhydene.2020.04.188
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score 13.2014675