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Comparative Numerical Evaluation of Feed-Spacer Geometries in Reverse Osmosis Modules for Enhanced Water Treatment Sustainability

delete2026-08-11
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OA
AI
H
H. Al-Sairfi *
F
Fajer M. Alelaj
M
Mohammad K. Alhamli
M
Mustafa A. Fadel Al-Qaisi
H
Hawraa Sabti
DOI:10.3390/membranes16080265delete
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Abstract

Abstract

En 中文
The lack of freshwater in the world requires a paradigm shift from linear water consumption to resilient and low-energy desalination technologies. Although reverse osmosis (RO) is the standard in the industry, its usefulness is essentially constrained by concentration polarization (CP) and non-useful hydraulic pressure losses. This paper applies a high-fidelity computational model in ANSYS Fluent 2022 R1 to conduct a comparative parametric evaluation of hexagonal and sinusoidal feed-spacer geometries relative to a baseline grid configuration. The solute concentration gradients at the fluid–membrane interface were solved using a 3D species transport model, which was optimized using one-micron near-wall inflation layers. The hexagonal configuration produced the lowest maximum membrane-surface salt mass fraction, decreasing it from 0.1127 kg/kg for the baseline grid to 0.0429 kg/kg, corresponding to a 61.9% reduction. Although the hexagonal design required an inlet pressure of 205.7 Pa, it produced a more favorable normalized mass-transfer–friction trade-off than the sinusoidal configuration (447.8 Pa), with a System Performance Index (η) of 2.53. These results demonstrate comparative micro-scale improvements in concentration polarization control and hydraulic performance under the simulated conditions. Experimental testing and system-level modeling are required before conclusions can be drawn regarding full-module energy consumption, photovoltaic integration, long-term fouling behavior, or economic feasibility. This study is consistent with the emerging Concepts and design for sustainability, whereby a circular and energy-efficient water economy is facilitated through an innovative mechanical design.
Keywords:
Computational Fluid Dynamics (CFD)
reverse osmosis
concentration polarization
sustainable water treatment
Digital Twin
additive manufacturing

Journal

Membranes cover
Membranes
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3.6
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4.9K
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Mustansiriyah University
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kuwait institute for scientific research
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kuwait municipality
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Public Authority for Applied Education and Training
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Citations: 582
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