Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review

Membrane distillation (MD) can be used in drinking water treatment, such as seawater desalination, ultra-pure water production, chemical substances concentration, removal or recovery of volatile solutes in an aqueous solution, concentration of fruit juice or liquid food, and wastewater treatment. Ho...

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Main Authors: Long Chen, Binxin Wu
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Membranes
Subjects:
Online Access:https://www.mdpi.com/2077-0375/11/7/513
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spelling doaj-0dddc6a5d7a44159a750564da827afcb2021-07-23T13:53:27ZengMDPI AGMembranes2077-03752021-07-011151351310.3390/membranes11070513Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A ReviewLong Chen0Binxin Wu1College of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou 310058, ChinaCollege of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou 310058, ChinaMembrane distillation (MD) can be used in drinking water treatment, such as seawater desalination, ultra-pure water production, chemical substances concentration, removal or recovery of volatile solutes in an aqueous solution, concentration of fruit juice or liquid food, and wastewater treatment. However, there is still much work to do to determine appropriate industrial implementation. MD processes refer to thermally driven transport of vapor through non-wetted porous hydrophobic membranes, which use the vapor pressure difference between the two sides of the membrane pores as the driving force. Recently, computational fluid dynamics (CFD) simulation has been widely used in MD process analysis, such as MD mechanism and characteristics analysis, membrane module development, preparing novel membranes, etc. A series of related research results have been achieved, including the solutions of temperature/concentration polarization and permeate flux enhancement. In this article, the research of CFD applications in MD progress is reviewed, including the applications of CFD in the mechanism and characteristics analysis of different MD structures, in the design and optimization of membrane modules, and in the preparation and characteristics analysis of novel membranes. The physical phenomena and geometric structures have been greatly simplified in most CFD simulations of MD processes, so there still is much work to do in this field in the future. A great deal of attention has been paid to the hydrodynamics and heat transfer in the channels of MD modules, as well as the optimization of these modules. However, the study of momentum transfer, heat, and mass transfer mechanisms in membrane pores is rarely involved. These projects should be combined with mass transfer, heat transfer and momentum transfer for more comprehensive and in-depth research. In most CFD simulations of MD processes, some physical phenomena, such as surface diffusion, which occur on the membrane surface and have an important guiding significance for the preparation of novel membranes to be further studied, are also ignored. As a result, although CFD simulation has been widely used in MD process modeling already, there are still some problems remaining, which should be studied in the future. It can be predicted that more complex mechanisms, such as permeable wall conditions, fouling dynamics, and multiple ionic component diffusion, will be included in the CFD modeling of MD processes. Furthermore, users’ developed routines for MD processes will also be incorporated into the existing commercial or open source CFD software packages.https://www.mdpi.com/2077-0375/11/7/513membrane distillationcomputational fluid dynamicsheat transfermass transfer
collection DOAJ
language English
format Article
sources DOAJ
author Long Chen
Binxin Wu
spellingShingle Long Chen
Binxin Wu
Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review
Membranes
membrane distillation
computational fluid dynamics
heat transfer
mass transfer
author_facet Long Chen
Binxin Wu
author_sort Long Chen
title Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review
title_short Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review
title_full Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review
title_fullStr Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review
title_full_unstemmed Research Progress in Computational Fluid Dynamics Simulations of Membrane Distillation Processes: A Review
title_sort research progress in computational fluid dynamics simulations of membrane distillation processes: a review
publisher MDPI AG
series Membranes
issn 2077-0375
publishDate 2021-07-01
description Membrane distillation (MD) can be used in drinking water treatment, such as seawater desalination, ultra-pure water production, chemical substances concentration, removal or recovery of volatile solutes in an aqueous solution, concentration of fruit juice or liquid food, and wastewater treatment. However, there is still much work to do to determine appropriate industrial implementation. MD processes refer to thermally driven transport of vapor through non-wetted porous hydrophobic membranes, which use the vapor pressure difference between the two sides of the membrane pores as the driving force. Recently, computational fluid dynamics (CFD) simulation has been widely used in MD process analysis, such as MD mechanism and characteristics analysis, membrane module development, preparing novel membranes, etc. A series of related research results have been achieved, including the solutions of temperature/concentration polarization and permeate flux enhancement. In this article, the research of CFD applications in MD progress is reviewed, including the applications of CFD in the mechanism and characteristics analysis of different MD structures, in the design and optimization of membrane modules, and in the preparation and characteristics analysis of novel membranes. The physical phenomena and geometric structures have been greatly simplified in most CFD simulations of MD processes, so there still is much work to do in this field in the future. A great deal of attention has been paid to the hydrodynamics and heat transfer in the channels of MD modules, as well as the optimization of these modules. However, the study of momentum transfer, heat, and mass transfer mechanisms in membrane pores is rarely involved. These projects should be combined with mass transfer, heat transfer and momentum transfer for more comprehensive and in-depth research. In most CFD simulations of MD processes, some physical phenomena, such as surface diffusion, which occur on the membrane surface and have an important guiding significance for the preparation of novel membranes to be further studied, are also ignored. As a result, although CFD simulation has been widely used in MD process modeling already, there are still some problems remaining, which should be studied in the future. It can be predicted that more complex mechanisms, such as permeable wall conditions, fouling dynamics, and multiple ionic component diffusion, will be included in the CFD modeling of MD processes. Furthermore, users’ developed routines for MD processes will also be incorporated into the existing commercial or open source CFD software packages.
topic membrane distillation
computational fluid dynamics
heat transfer
mass transfer
url https://www.mdpi.com/2077-0375/11/7/513
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