3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics

Enhancing the efficiency of reverse osmosis (RO) applications through the design and modification of spacer geometries for spiral wound membrane (SWM) modules remains a challenging task. In this work, four 3D feed spacer geometries with different degrees of “floating” characteristics are studied usi...

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Main Authors: Toh, K. Y., Liang, Y. Y., Lau, W. J., Weihs, G. A. Fimbres
Format: Article
Language:English
Published: Elsevier Ltd 2020
Subjects:
Online Access:http://umpir.ump.edu.my/id/eprint/28406/
http://umpir.ump.edu.my/id/eprint/28406/1/3D%20CFD%20study%20on%20hydrodynamics%20and%20mass%20transfer%20.pdf
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author Toh, K. Y.
Liang, Y. Y.
Lau, W. J.
Weihs, G. A. Fimbres
author_facet Toh, K. Y.
Liang, Y. Y.
Lau, W. J.
Weihs, G. A. Fimbres
author_sort Toh, K. Y.
building UMP Institutional Repository
collection Online Access
description Enhancing the efficiency of reverse osmosis (RO) applications through the design and modification of spacer geometries for spiral wound membrane (SWM) modules remains a challenging task. In this work, four 3D feed spacer geometries with different degrees of “floating” characteristics are studied using computational fluid dynamics (CFD) simulations to investigate the mechanisms that result in shear stress and mass transfer enhancement. The modelled data reveal that the floating ratio (Rf) is not a determining factor for mass transfer enhancement, as the transport mechanism is more strongly dependent on other geometric characteristics, such as a 2- or 3-layer design. The λ2 analysis confirms our hypothesis, as the middle filament in a 3-layer design disrupts the formation of the large streamwise vortex located downstream of the intersection between the top and bottom filaments at Reh 200. This explains why 3-layer spacers (both woven and non-woven) show lower Sherwood number (Sh) than a 2-layer woven (2LW) spacer at Reh 200. However, at a smaller Reh (<100), the vortical flow for 2LW is rather weak as a result of reduced membrane region with fluid mixing caused by creeping flow. This has led to the smaller Sh of 2LW compared to the 3-layer spacer.
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spelling ump-284062021-01-22T08:16:37Z http://umpir.ump.edu.my/id/eprint/28406/ 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics Toh, K. Y. Liang, Y. Y. Lau, W. J. Weihs, G. A. Fimbres TP Chemical technology Enhancing the efficiency of reverse osmosis (RO) applications through the design and modification of spacer geometries for spiral wound membrane (SWM) modules remains a challenging task. In this work, four 3D feed spacer geometries with different degrees of “floating” characteristics are studied using computational fluid dynamics (CFD) simulations to investigate the mechanisms that result in shear stress and mass transfer enhancement. The modelled data reveal that the floating ratio (Rf) is not a determining factor for mass transfer enhancement, as the transport mechanism is more strongly dependent on other geometric characteristics, such as a 2- or 3-layer design. The λ2 analysis confirms our hypothesis, as the middle filament in a 3-layer design disrupts the formation of the large streamwise vortex located downstream of the intersection between the top and bottom filaments at Reh 200. This explains why 3-layer spacers (both woven and non-woven) show lower Sherwood number (Sh) than a 2-layer woven (2LW) spacer at Reh 200. However, at a smaller Reh (<100), the vortical flow for 2LW is rather weak as a result of reduced membrane region with fluid mixing caused by creeping flow. This has led to the smaller Sh of 2LW compared to the 3-layer spacer. Elsevier Ltd 2020-04-17 Article PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/28406/1/3D%20CFD%20study%20on%20hydrodynamics%20and%20mass%20transfer%20.pdf Toh, K. Y. and Liang, Y. Y. and Lau, W. J. and Weihs, G. A. Fimbres (2020) 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics. Chemical Engineering Research and Design, 159. pp. 36-46. ISSN 0263-8762. (Published) https://doi.org/10.1016/j.cherd.2020.04.010 https://doi.org/10.1016/j.cherd.2020.04.010
spellingShingle TP Chemical technology
Toh, K. Y.
Liang, Y. Y.
Lau, W. J.
Weihs, G. A. Fimbres
3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics
title 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics
title_full 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics
title_fullStr 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics
title_full_unstemmed 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics
title_short 3D CFD study on hydrodynamics and mass transfer phenomena for SWM feed spacer with different floating characteristics
title_sort 3d cfd study on hydrodynamics and mass transfer phenomena for swm feed spacer with different floating characteristics
topic TP Chemical technology
url http://umpir.ump.edu.my/id/eprint/28406/
http://umpir.ump.edu.my/id/eprint/28406/
http://umpir.ump.edu.my/id/eprint/28406/
http://umpir.ump.edu.my/id/eprint/28406/1/3D%20CFD%20study%20on%20hydrodynamics%20and%20mass%20transfer%20.pdf