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Evaluation of Novel Design of Feed Spacer for Spiral-Wound Membranes Through CFD Simulations and Experiments

  • Meng Wang
  • , Youxin Li
  • , Lu Bai
  • , Robert Field
  • , Dengyue Chen*
  • , Bing Wang*
  • , Jun Jie Wu
  • *Corresponding author for this work
  • Nankai University
  • University of Oxford
  • Xiamen University

Research output: Contribution to journalArticlepeer-review

Abstract

This study proposes an innovative spacer design for use in spiral-wound membrane filtration systems as a high-performance alternative to conventional woven spacers. By eliminating interwoven filaments, this structure fundamentally reshapes flow patterns while maintaining mechanical support. A novel aspect of this methodology is the inaugural application of coupled computational fluid dynamics (CFD) and the discrete phase model (DPM) for modeling microbial particle transport and deposition dynamics, which has been a critical gap in prior studies that focused solely on hydrodynamic analysis without addressing biocolloid dynamics. Numerical simulations demonstrated that the novel design reduces stagnant zones by a significant amount compared to standard woven spacers and achieves a greater velocity uniformity. For all eight configurations of the novel design, the DPM-derived microbial distribution maps revealed a reduction of circa 65% in particle colonization density on the spacer surface, and this reaches a 77% reduction for the optimal design. These measurements directly linking structural geometry to antifouling efficacy provide mechanistic insight unattainable through conventional velocity field analysis alone. Experimental validation using optical coherence tomography (OCT) revealed a 40% reduction in TOC deposition, while confocal laser scanning microscopy (CLSM) quantified a 54% decrease in biofilm viability through adenosine triphosphate (ATP) measurements. The incorporation of the optimal spacer in the plate-and-frame test module demonstrated that the lower degree of fouling caused both a 23% increase in permeation flux together with 76% lower energy consumption compared to the commercial design.
Original languageEnglish
Article number123
Number of pages23
JournalMembranes
Volume16
Issue number4
Early online date31 Mar 2026
DOIs
Publication statusPublished - 1 Apr 2026

Bibliographical note

Copyright © 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.

Funding

This work was supported by grants from the National Natural Science Foundation of China (No. 52100047), the National Natural Science Foundation of China (No. 21706221), and the Scientific Research Foundation of State Key Laboratory of Vaccines for Infectious Diseases, Xiang An Biomedicine Laboratory (No. 2025XAKJ0102012).

FundersFunder number
Scientific Research Foundation of State Key Laboratory of Vaccines for Infectious Diseases
National Natural Science Foundation of China52100047, 21706221
Xiang An Biomedicine Laboratory2025XAKJ0102012

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 7 - Affordable and Clean Energy
      SDG 7 Affordable and Clean Energy

    Keywords

    • specific energy cost
    • feed spacer
    • computational fluid dynamics
    • discrete phase model
    • biofouling

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