A flame structure approach for controlling carbon nanotube growth in flame synthesis

Flame synthesis of carbon nanotube (CNT) is still not commercialized due to the difficult control over CNT growth region in heterogeneous flame environment. In the present study, a model for flame synthesis of CNT that is capable of predicting CNT growth region is developed using a coupled computati...

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Main Authors: Zainal, M. T., Mohd. Yasin, M. F., Abdul Wahid, M., Mohd. Sies, M.
Format: Article
Published: Bellwether Publishing, Ltd. 2021
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Online Access:http://eprints.utm.my/id/eprint/94579/
http://dx.doi.org/10.1080/00102202.2019.1694518
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spelling my.utm.945792022-03-31T15:48:02Z http://eprints.utm.my/id/eprint/94579/ A flame structure approach for controlling carbon nanotube growth in flame synthesis Zainal, M. T. Mohd. Yasin, M. F. Abdul Wahid, M. Mohd. Sies, M. TJ Mechanical engineering and machinery Flame synthesis of carbon nanotube (CNT) is still not commercialized due to the difficult control over CNT growth region in heterogeneous flame environment. In the present study, a model for flame synthesis of CNT that is capable of predicting CNT growth region is developed using a coupled computation of a computational fluid dynamics (CFD) flame model and a CNT growth rate model. The CFD results serve as input for the growth rate model to calculate CNT length and to generate flame structures that feature high CNT growth regions. Validation of the flame model, CNT growth model, and multi-scale model of flame synthesis is done with good accuracy. In the baseline case, the mixture fraction-based flame structures at various flame heights interestingly suggest a fixed range of mixture fraction of 0.46 to 0.85 within the growth region. The said finding indicates that mixture fraction governs the growth region in a diffusion flame. Almost twofold increase in the size of CNT growth region in physical space is observed when the inlet oxygen composition is increased from 25 to 35%. The increase in heat release of the rich flame at high oxygen concentration provides a wider region of high temperature for growth compared to that at low oxygen concentration. Bellwether Publishing, Ltd. 2021 Article PeerReviewed Zainal, M. T. and Mohd. Yasin, M. F. and Abdul Wahid, M. and Mohd. Sies, M. (2021) A flame structure approach for controlling carbon nanotube growth in flame synthesis. Combustion Science and Technology, 193 (8). pp. 1326-1342. ISSN 0010-2202 http://dx.doi.org/10.1080/00102202.2019.1694518
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 TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Zainal, M. T.
Mohd. Yasin, M. F.
Abdul Wahid, M.
Mohd. Sies, M.
A flame structure approach for controlling carbon nanotube growth in flame synthesis
description Flame synthesis of carbon nanotube (CNT) is still not commercialized due to the difficult control over CNT growth region in heterogeneous flame environment. In the present study, a model for flame synthesis of CNT that is capable of predicting CNT growth region is developed using a coupled computation of a computational fluid dynamics (CFD) flame model and a CNT growth rate model. The CFD results serve as input for the growth rate model to calculate CNT length and to generate flame structures that feature high CNT growth regions. Validation of the flame model, CNT growth model, and multi-scale model of flame synthesis is done with good accuracy. In the baseline case, the mixture fraction-based flame structures at various flame heights interestingly suggest a fixed range of mixture fraction of 0.46 to 0.85 within the growth region. The said finding indicates that mixture fraction governs the growth region in a diffusion flame. Almost twofold increase in the size of CNT growth region in physical space is observed when the inlet oxygen composition is increased from 25 to 35%. The increase in heat release of the rich flame at high oxygen concentration provides a wider region of high temperature for growth compared to that at low oxygen concentration.
format Article
author Zainal, M. T.
Mohd. Yasin, M. F.
Abdul Wahid, M.
Mohd. Sies, M.
author_facet Zainal, M. T.
Mohd. Yasin, M. F.
Abdul Wahid, M.
Mohd. Sies, M.
author_sort Zainal, M. T.
title A flame structure approach for controlling carbon nanotube growth in flame synthesis
title_short A flame structure approach for controlling carbon nanotube growth in flame synthesis
title_full A flame structure approach for controlling carbon nanotube growth in flame synthesis
title_fullStr A flame structure approach for controlling carbon nanotube growth in flame synthesis
title_full_unstemmed A flame structure approach for controlling carbon nanotube growth in flame synthesis
title_sort flame structure approach for controlling carbon nanotube growth in flame synthesis
publisher Bellwether Publishing, Ltd.
publishDate 2021
url http://eprints.utm.my/id/eprint/94579/
http://dx.doi.org/10.1080/00102202.2019.1694518
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score 13.18916