Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum

The dispersion characteristics of the granular material frequently encountered in many chemical industries play an important role in the system operation since it is related to the solid residence time, and thus further influence the heat and mass transfer behavior of the whole process. To shed some...

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Main Authors: Yang, Shiliang, Luo, Kuo, Chew, Jia Wei
Other Authors: School of Chemical and Biomedical Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/137986
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1379862020-04-21T04:52:22Z Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum Yang, Shiliang Luo, Kuo Chew, Jia Wei School of Chemical and Biomedical Engineering Engineering::Chemical engineering Rotating Drum Solid Dispersion The dispersion characteristics of the granular material frequently encountered in many chemical industries play an important role in the system operation since it is related to the solid residence time, and thus further influence the heat and mass transfer behavior of the whole process. To shed some light, the discrete element method (DEM) is employed here to study a three-dimensional rotating drum, with the key focus being the axial dispersion characteristics of the solid phase. Our results prove the natural existence of a preferential channel for axial dispersion spanning the entire drum length, which provides insights on the region where the most extensive axial segregation effects are expected. Furthermore, we show that the axial solid dispersion coefficients adhere to normal frequency distributions in the active region, passive region and the entire drum. Also, increasing the rotating speed enhances while increasing the fill level diminishes the axial dispersion intensity in the system. Collectively, the results here provide new and valuable insights on the axial dispersion characteristics in the rotating drum, which is useful for the further understanding and optimization of the system. NRF (Natl Research Foundation, S’pore) 2020-04-21T04:52:21Z 2020-04-21T04:52:21Z 2018 Journal Article Yang, S., Luo, K., & Chew, J. W. (2018). Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum. Powder Technology, 332, 131-138. doi:10.1016/j.powtec.2018.03.066 0032-5910 https://hdl.handle.net/10356/137986 10.1016/j.powtec.2018.03.066 2-s2.0-85044755731 332 131 138 en Powder Technology © 2018 Elsevier B.V. All rights reserved.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Engineering::Chemical engineering
Rotating Drum
Solid Dispersion
spellingShingle Engineering::Chemical engineering
Rotating Drum
Solid Dispersion
Yang, Shiliang
Luo, Kuo
Chew, Jia Wei
Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
description The dispersion characteristics of the granular material frequently encountered in many chemical industries play an important role in the system operation since it is related to the solid residence time, and thus further influence the heat and mass transfer behavior of the whole process. To shed some light, the discrete element method (DEM) is employed here to study a three-dimensional rotating drum, with the key focus being the axial dispersion characteristics of the solid phase. Our results prove the natural existence of a preferential channel for axial dispersion spanning the entire drum length, which provides insights on the region where the most extensive axial segregation effects are expected. Furthermore, we show that the axial solid dispersion coefficients adhere to normal frequency distributions in the active region, passive region and the entire drum. Also, increasing the rotating speed enhances while increasing the fill level diminishes the axial dispersion intensity in the system. Collectively, the results here provide new and valuable insights on the axial dispersion characteristics in the rotating drum, which is useful for the further understanding and optimization of the system.
author2 School of Chemical and Biomedical Engineering
author_facet School of Chemical and Biomedical Engineering
Yang, Shiliang
Luo, Kuo
Chew, Jia Wei
format Article
author Yang, Shiliang
Luo, Kuo
Chew, Jia Wei
author_sort Yang, Shiliang
title Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
title_short Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
title_full Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
title_fullStr Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
title_full_unstemmed Three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
title_sort three-dimensional axial dispersion dynamics of granular flow in the rolling-regime rotating drum
publishDate 2020
url https://hdl.handle.net/10356/137986
_version_ 1681059079750942720