Numerical study of desalination by Sweeping Gas Membrane Distillation

IF 0.8 4区 工程技术 Q4 ENGINEERING, CHEMICAL
Nizar Loussif, J. Orfi
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引用次数: 1

Abstract

The present study deals with a numerical investigation of heat and mass transfer in a Sweeping Gas Membrane Distillation (SGMD) used for desalination. The governing equations expressing the conservation of mass, momentum, energy and species with coupled boundary conditions were solved numerically. The slip boundary condition applied on the feed saline solution-hydrophobic membrane interface is taken into consideration showing its effects on profiles and process parameters.The numerical model was validated with available experimental data and was found to be in good agreement particularly when the slip condition is considered. The results of the simulations highlighted the effect of slip boundary condition on the velocity and temperature distributions as well as the process effectiveness. They showed in particular that as the slip length increases, the permeate flux of fresh water and process thermal efficiency rise.
扫气膜蒸馏脱盐的数值研究
本文对用于海水淡化的扫气膜蒸馏(SGMD)的传热传质过程进行了数值研究。在耦合边界条件下,对质量、动量、能量和物质守恒的控制方程进行了数值求解。考虑了进料盐溶液-疏水膜界面的滑移边界条件,显示了滑移边界条件对剖面和工艺参数的影响。数值模型与已有的实验数据进行了验证,特别是在考虑滑移的情况下,数值模型的一致性较好。模拟结果突出了滑移边界条件对速度和温度分布的影响以及过程的有效性。他们特别指出,随着滑移长度的增加,淡水渗透通量和过程热效率增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Membrane Water Treatment
Membrane Water Treatment ENGINEERING, CHEMICAL-WATER RESOURCES
CiteScore
1.90
自引率
30.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: The Membrane and Water Treatment(MWT), An International Journal, aims at opening an access to the valuable source of technical information and providing an excellent publication channel for the global community of researchers in Membrane and Water Treatment related area. Specific emphasis of the journal may include but not limited to; the engineering and scientific aspects of understanding the basic mechanisms and applying membranes for water and waste water treatment, such as transport phenomena, surface characteristics, fouling, scaling, desalination, membrane bioreactors, water reuse, and system optimization.
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