Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer
In this paper, an intensified spray-drying process in a novel Radial Multizone Dryer (RMD) is analyzed by means of CFD. A three-dimensional Eulerian–Lagrangian multiphase model is applied to investigate the effect of solids outlet location, relative hot/cold airflow ratio, and droplet size on heat a...
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doaj-20f349aa60974c18abbae5c6e8b58e192021-02-25T00:03:18ZengMDPI AGEnergies1996-10732021-02-01141233123310.3390/en14051233Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone DryerUmair Jamil Ur Rahman0Artur Krzysztof Pozarlik1Thomas Tourneur2Axel de Broqueville3Juray De Wilde4Gerrit Brem5Thermal Engineering Group, Department of Thermal and Fluid Engineering, University of Twente, P.O. Box 217, 7500 AE Enschede, The NetherlandsThermal Engineering Group, Department of Thermal and Fluid Engineering, University of Twente, P.O. Box 217, 7500 AE Enschede, The NetherlandsMaterials & Process Engineering Division, Université Catholique de Louvain, 1348 Louvain-la-Neuve, BegliumMaterials & Process Engineering Division, Université Catholique de Louvain, 1348 Louvain-la-Neuve, BegliumMaterials & Process Engineering Division, Université Catholique de Louvain, 1348 Louvain-la-Neuve, BegliumThermal Engineering Group, Department of Thermal and Fluid Engineering, University of Twente, P.O. Box 217, 7500 AE Enschede, The NetherlandsIn this paper, an intensified spray-drying process in a novel Radial Multizone Dryer (RMD) is analyzed by means of CFD. A three-dimensional Eulerian–Lagrangian multiphase model is applied to investigate the effect of solids outlet location, relative hot/cold airflow ratio, and droplet size on heat and mass transfer characteristics, G-acceleration, residence time, and separation efficiency of the product. The results indicate that the temperature pattern in the dryer is dependent on the solids outlet location. A stable, symmetric spray behavior with maximum evaporation in the hot zone is observed when the solids outlet is placed at the periphery of the vortex chamber. The maximum product separation efficiency (85 wt %) is obtained by applying high G-acceleration (at relative hot/cold ratio of 0.75) and narrow droplet size distribution (45–70 µm). The separation of different sized particles with distinct drying times is also observed. Smaller particles (<32 µm) leave the reactor via the gas outlet, while the majority of big particles leave it via the solids outlet, thus depicting in situ particle separation. The results revealed the feasibility and benefits of a multizone drying operation and that the RMD can be an attractive solution for spray drying technology.https://www.mdpi.com/1996-1073/14/5/1233spray dryingvortex chamberprocess intensificationCFDRadial Multizone DryerEulerian–Lagrangian |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Umair Jamil Ur Rahman Artur Krzysztof Pozarlik Thomas Tourneur Axel de Broqueville Juray De Wilde Gerrit Brem |
spellingShingle |
Umair Jamil Ur Rahman Artur Krzysztof Pozarlik Thomas Tourneur Axel de Broqueville Juray De Wilde Gerrit Brem Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer Energies spray drying vortex chamber process intensification CFD Radial Multizone Dryer Eulerian–Lagrangian |
author_facet |
Umair Jamil Ur Rahman Artur Krzysztof Pozarlik Thomas Tourneur Axel de Broqueville Juray De Wilde Gerrit Brem |
author_sort |
Umair Jamil Ur Rahman |
title |
Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer |
title_short |
Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer |
title_full |
Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer |
title_fullStr |
Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer |
title_full_unstemmed |
Numerical Study toward Optimization of Spray Drying in a Novel Radial Multizone Dryer |
title_sort |
numerical study toward optimization of spray drying in a novel radial multizone dryer |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2021-02-01 |
description |
In this paper, an intensified spray-drying process in a novel Radial Multizone Dryer (RMD) is analyzed by means of CFD. A three-dimensional Eulerian–Lagrangian multiphase model is applied to investigate the effect of solids outlet location, relative hot/cold airflow ratio, and droplet size on heat and mass transfer characteristics, G-acceleration, residence time, and separation efficiency of the product. The results indicate that the temperature pattern in the dryer is dependent on the solids outlet location. A stable, symmetric spray behavior with maximum evaporation in the hot zone is observed when the solids outlet is placed at the periphery of the vortex chamber. The maximum product separation efficiency (85 wt %) is obtained by applying high G-acceleration (at relative hot/cold ratio of 0.75) and narrow droplet size distribution (45–70 µm). The separation of different sized particles with distinct drying times is also observed. Smaller particles (<32 µm) leave the reactor via the gas outlet, while the majority of big particles leave it via the solids outlet, thus depicting in situ particle separation. The results revealed the feasibility and benefits of a multizone drying operation and that the RMD can be an attractive solution for spray drying technology. |
topic |
spray drying vortex chamber process intensification CFD Radial Multizone Dryer Eulerian–Lagrangian |
url |
https://www.mdpi.com/1996-1073/14/5/1233 |
work_keys_str_mv |
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