Numerical Modelling Assisted Design of a Compact Ultrafiltration (uf) Flat Sheet Membrane Module
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Date
2021
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
MDPI
Open Access Color
GOLD
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
The increasing adoption of ultra-low pressure (ULP) membrane systems for drinking water treatment in small rural communities is currently hindered by a limited number of studies on module design. Detailed knowledge on both intrinsic membrane transport properties and fluid hydrodynamics within the module is essential in understanding ULP performance prediction, mass transfer analysis for scaling-up between lab-scale and industrial scale research. In comparison to hollow fiber membranes, flat sheet membranes present certain advantages such as simple manufacture, sheet replacement for cleaning, moderate packing density and low to moderate energy usage. In the present case study, a numerical model using computational fluid dynamics (CFD) of a novel custom flat sheet membrane module has been designed in 3D to predict fluid flow conditions. The permeate flux through the membrane decreased with an increase in spacer curviness from 2.81 L/m(2)h for no (0%) curviness to 2.73 L/m(2)h for full (100%) curviness. A parametric analysis on configuration variables was carried out to determine the optimum design variables and no significant influence of spacer inflow or outflow thickness on the fluid flow were observed. The numerical model provides the necessary information on the role of geometrical and operating parameters for fabricating a module prototype where access to technical expertise is limited.
Description
Keywords
Ultra-low pressure (ULP), Ultrafiltration (UF), Simulation, Computational fluid dynamics, Membrane, Chemical technology, ultra-low pressure (ULP), Case Report, TP1-1185, simulation, computational fluid dynamics (CFD), Chemical engineering, ultrafiltration (UF), TP155-156, flat sheet membrane module
Fields of Science
02 engineering and technology, 0210 nano-technology
Citation
WoS Q
Q2
Scopus Q
Q2

OpenCitations Citation Count
8
Source
Membranes
Volume
11
Issue
1
Start Page
End Page
PlumX Metrics
Citations
CrossRef : 10
Scopus : 12
PubMed : 3
Captures
Mendeley Readers : 50
SCOPUS™ Citations
12
checked on Apr 27, 2026
Web of Science™ Citations
11
checked on Apr 27, 2026
Page Views
980
checked on Apr 27, 2026
Downloads
268
checked on Apr 27, 2026
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