Comparative Hydrodynamic Assessment of Twill-Woven Feed Spacers in Flat-Sheet Ultrafiltration Membrane Cassettes: Balancing Hydraulic Resistance and Near-Membrane Flow Enhancement

Feed spacers can promote membrane-side transport in flat-sheet ultrafiltration channels, but the accompanying hydraulic resistance increases pumping demand. This study combined pure-water pressure-drop measurements with transient three-dimensional ANSYS Fluent simulations to compare a commercial 2/1 twill-woven spacer (T-Base) and 16 systematically varied candidate configurations. A geometry-resolved finite-volume model was evaluated through computational-domain, mesh, and time-step sensitivity assessments; the predicted pressure gradients agreed with the measurements with a mean relative deviation below 4%. The methodological novelty lies in integrating pressure-normalized near-wall efficacy, bilateral wall shear stress balance, and equal-area spatial sampling within a geometry-resolved, multi-indicator framework for comparing spacer configurations with different periodic lengths and mesh densities. At a 60° low attack angle and a superficial inlet velocity of 0.0551 m·s−1, T3823 (filament spacing 0.38 mm, filament diameter 0.23 mm, spacer thickness 0.44 mm) provided the most favorable hydrodynamic trade-off among the 16 candidates. It produced a near-membrane velocity of 0.0220 m·s−1 and a pressure gradient of 53.5 kPa·m−1; its pressure-normalized near-wall efficacy was 1.23 relative to T-Base. T3823 also reduced bilateral membrane shear deviation from 24.91% to 8.30% and near-wall velocity dispersion by 50.7%. Overall, the results highlight the value of coordinated spacer-geometry optimization for balancing near-membrane flow enhancement and hydraulic resistance, with T3823 emerging as the most promising configuration among the candidates evaluated.

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Publication Details

Journal
Membranes
Published
2026-09-30
DOI
https://doi.org/10.3390/membranes16100329
Primary Topic
Membrane Separation Technologies
Type
article
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article

Comparative Hydrodynamic Assessment of Twill-Woven Feed Spacers in Flat-Sheet Ultrafiltration Membrane Cassettes: Balancing Hydraulic Resistance and Near-Membrane Flow Enhancement

Dongzhu Wu, Shu Li, Hongbo Huang, Junteng Liu
Membranes
Membrane Separation Technologies
article

Comparative Hydrodynamic Assessment of Twill-Woven Feed Spacers in Flat-Sheet Ultrafiltration Membrane Cassettes: Balancing Hydraulic Resistance and Near-Membrane Flow Enhancement

Dongzhu Wu, Shu Li, Hongbo Huang, Junteng Liu
article en

Abstract

Feed spacers can promote membrane-side transport in flat-sheet ultrafiltration channels, but the accompanying hydraulic resistance increases pumping demand. This study combined pure-water pressure-drop measurements with transient three-dimensional ANSYS Fluent simulations to compare a commercial 2/1 twill-woven spacer (T-Base) and 16 systematically varied candidate configurations. A geometry-resolved finite-volume model was evaluated through computational-domain, mesh, and time-step sensitivity assessments; the predicted pressure gradients agreed with the measurements with a mean relative deviation below 4%. The methodological novelty lies in integrating pressure-normalized near-wall efficacy, bilateral wall shear stress balance, and equal-area spatial sampling within a geometry-resolved, multi-indicator framework for comparing spacer configurations with different periodic lengths and mesh densities. At a 60° low attack angle and a superficial inlet velocity of 0.0551 m·s−1, T3823 (filament spacing 0.38 mm, filament diameter 0.23 mm, spacer thickness 0.44 mm) provided the most favorable hydrodynamic trade-off among the 16 candidates. It produced a near-membrane velocity of 0.0220 m·s−1 and a pressure gradient of 53.5 kPa·m−1; its pressure-normalized near-wall efficacy was 1.23 relative to T-Base. T3823 also reduced bilateral membrane shear deviation from 24.91% to 8.30% and near-wall velocity dispersion by 50.7%. Overall, the results highlight the value of coordinated spacer-geometry optimization for balancing near-membrane flow enhancement and hydraulic resistance, with T3823 emerging as the most promising configuration among the candidates evaluated.

MembranesVol. 16(10)
Beijing University of Chemical Technology (CN)
Clean water and sanitation
Openalex Percentile: Top 21%
Membrane Separation Technologies
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Comparative Hydrodynamic Assessment of Twill-Woven Feed Spacers in Flat-Sheet Ultrafiltration Membrane Cassettes: Balancing Hydraulic Resistance and Near-Membrane Flow Enhancement — Dongzhu Wu, Shu Li, et al. · Membranes (2026) | TGRS Research Map | TGRS