CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)

The catalytic performance of fibre-like Ta-promoted Ni/ZSM-5 in dry reforming of methane (DRM) was studied under different feeding compositions for obtaining a robust catalyst, which is important for large-scale production of syngas via DRM. The deactivation of unpromoted Ni/ZSM-5 was due to polymer...

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Main Authors: Hambali, H. U., Jalil, A. A., Abdulrasheed, A. A., Siang, T. J., Owgi, A. H. K., Aziz, F. F. A.
Format: Article
Published: Elsevier Ltd 2021
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Online Access:http://eprints.utm.my/id/eprint/94650/
http://dx.doi.org/10.1016/j.ces.2020.116320
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spelling my.utm.946502022-03-31T15:53:15Z http://eprints.utm.my/id/eprint/94650/ CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM) Hambali, H. U. Jalil, A. A. Abdulrasheed, A. A. Siang, T. J. Owgi, A. H. K. Aziz, F. F. A. TP Chemical technology The catalytic performance of fibre-like Ta-promoted Ni/ZSM-5 in dry reforming of methane (DRM) was studied under different feeding compositions for obtaining a robust catalyst, which is important for large-scale production of syngas via DRM. The deactivation of unpromoted Ni/ZSM-5 was due to polymerization of carbon deposits which block the active sites and accelerate agglomeration. Introduction of Ta was shown to facilitate the rate of dissociation of reactants and carbon gasification due to increased Ni-support interaction and surface oxygen species. From ANOVA analysis, operating temperature was found to be the most significant operating parameter that influence CH4 conversion. The optimum CH4 conversion predicted from the response surface analysis is 96.6% at reaction temperature of 784.15 °C, CO2:CH4 feed ratio of 2.52, and GHSV of 33,760 mL g-1 h-1. The strong catalytic stability is a result of the small-size and immobilized Ni sites which is vital for efficient DRM catalyst development. Elsevier Ltd 2021 Article PeerReviewed Hambali, H. U. and Jalil, A. A. and Abdulrasheed, A. A. and Siang, T. J. and Owgi, A. H. K. and Aziz, F. F. A. (2021) CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM). Chemical Engineering Science, 231 . p. 116320. ISSN 0009-2509 http://dx.doi.org/10.1016/j.ces.2020.116320
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
Hambali, H. U.
Jalil, A. A.
Abdulrasheed, A. A.
Siang, T. J.
Owgi, A. H. K.
Aziz, F. F. A.
CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
description The catalytic performance of fibre-like Ta-promoted Ni/ZSM-5 in dry reforming of methane (DRM) was studied under different feeding compositions for obtaining a robust catalyst, which is important for large-scale production of syngas via DRM. The deactivation of unpromoted Ni/ZSM-5 was due to polymerization of carbon deposits which block the active sites and accelerate agglomeration. Introduction of Ta was shown to facilitate the rate of dissociation of reactants and carbon gasification due to increased Ni-support interaction and surface oxygen species. From ANOVA analysis, operating temperature was found to be the most significant operating parameter that influence CH4 conversion. The optimum CH4 conversion predicted from the response surface analysis is 96.6% at reaction temperature of 784.15 °C, CO2:CH4 feed ratio of 2.52, and GHSV of 33,760 mL g-1 h-1. The strong catalytic stability is a result of the small-size and immobilized Ni sites which is vital for efficient DRM catalyst development.
format Article
author Hambali, H. U.
Jalil, A. A.
Abdulrasheed, A. A.
Siang, T. J.
Owgi, A. H. K.
Aziz, F. F. A.
author_facet Hambali, H. U.
Jalil, A. A.
Abdulrasheed, A. A.
Siang, T. J.
Owgi, A. H. K.
Aziz, F. F. A.
author_sort Hambali, H. U.
title CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
title_short CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
title_full CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
title_fullStr CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
title_full_unstemmed CO2 reforming of methane over Ta-promoted Ni/ZSM-5 fibre-like catalyst: Insights on deactivation behavior and optimization using response surface methodology (RSM)
title_sort co2 reforming of methane over ta-promoted ni/zsm-5 fibre-like catalyst: insights on deactivation behavior and optimization using response surface methodology (rsm)
publisher Elsevier Ltd
publishDate 2021
url http://eprints.utm.my/id/eprint/94650/
http://dx.doi.org/10.1016/j.ces.2020.116320
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score 13.159267