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Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model

[Image: see text] A distributed activation energy model (DAEM) was applied to the kinetic analysis of CO(2) and H(2)O gasification reactions for pulverized metallurgical coke. The results of the scanning electron microscopy observations and CO(2) gas adsorption suggested that the gasification reacti...

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Autores principales: Numazawa, Yui, Hara, Yuki, Matsukawa, Yoshiya, Matsushita, Yohsuke, Aoki, Hideyuki, Shishido, Takahiro, Okuyama, Noriyuki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153985/
https://www.ncbi.nlm.nih.gov/pubmed/34056299
http://dx.doi.org/10.1021/acsomega.1c00443
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author Numazawa, Yui
Hara, Yuki
Matsukawa, Yoshiya
Matsushita, Yohsuke
Aoki, Hideyuki
Shishido, Takahiro
Okuyama, Noriyuki
author_facet Numazawa, Yui
Hara, Yuki
Matsukawa, Yoshiya
Matsushita, Yohsuke
Aoki, Hideyuki
Shishido, Takahiro
Okuyama, Noriyuki
author_sort Numazawa, Yui
collection PubMed
description [Image: see text] A distributed activation energy model (DAEM) was applied to the kinetic analysis of CO(2) and H(2)O gasification reactions for pulverized metallurgical coke. The results of the scanning electron microscopy observations and CO(2) gas adsorption suggested that the gasification reaction occurs at the particle surface. Therefore, a grain model was employed as a gasification reaction model. The reaction rates of CO(2) and H(2)O gasification were evaluated based on the DAEM. The activation energy changed as the reaction progressed and hardly depended on the particle size. The activation energies were 200–260 kJ/mol in CO(2) gasification and 220–290 kJ/mol in H(2)O gasification. The frequency factor of H(2)O gasification was approximately 10 times larger than that of CO(2) gasification, regardless of the progress of the reaction. At the same activation energy level, the frequency factor showed a higher value with a decrease in the particle size. This result was consistent with the theory of the grain model and indicated that the gasification reaction of the pulverized coke with a micrometer scale occurs on the surface of the coke particle. Furthermore, the value predicted by the DAEM was in good agreement with the experimental one.
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spelling pubmed-81539852021-05-27 Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model Numazawa, Yui Hara, Yuki Matsukawa, Yoshiya Matsushita, Yohsuke Aoki, Hideyuki Shishido, Takahiro Okuyama, Noriyuki ACS Omega [Image: see text] A distributed activation energy model (DAEM) was applied to the kinetic analysis of CO(2) and H(2)O gasification reactions for pulverized metallurgical coke. The results of the scanning electron microscopy observations and CO(2) gas adsorption suggested that the gasification reaction occurs at the particle surface. Therefore, a grain model was employed as a gasification reaction model. The reaction rates of CO(2) and H(2)O gasification were evaluated based on the DAEM. The activation energy changed as the reaction progressed and hardly depended on the particle size. The activation energies were 200–260 kJ/mol in CO(2) gasification and 220–290 kJ/mol in H(2)O gasification. The frequency factor of H(2)O gasification was approximately 10 times larger than that of CO(2) gasification, regardless of the progress of the reaction. At the same activation energy level, the frequency factor showed a higher value with a decrease in the particle size. This result was consistent with the theory of the grain model and indicated that the gasification reaction of the pulverized coke with a micrometer scale occurs on the surface of the coke particle. Furthermore, the value predicted by the DAEM was in good agreement with the experimental one. American Chemical Society 2021-04-22 /pmc/articles/PMC8153985/ /pubmed/34056299 http://dx.doi.org/10.1021/acsomega.1c00443 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Numazawa, Yui
Hara, Yuki
Matsukawa, Yoshiya
Matsushita, Yohsuke
Aoki, Hideyuki
Shishido, Takahiro
Okuyama, Noriyuki
Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model
title Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model
title_full Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model
title_fullStr Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model
title_full_unstemmed Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model
title_short Kinetic Modeling of CO(2) and H(2)O Gasification Reactions for Metallurgical Coke Using a Distributed Activation Energy Model
title_sort kinetic modeling of co(2) and h(2)o gasification reactions for metallurgical coke using a distributed activation energy model
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153985/
https://www.ncbi.nlm.nih.gov/pubmed/34056299
http://dx.doi.org/10.1021/acsomega.1c00443
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