Literature DB >> 29715645

Fouling resilient perforated feed spacers for membrane filtration.

Sarah Kerdi1, Adnan Qamar1, Johannes S Vrouwenvelder1, Noreddine Ghaffour2.   

Abstract

The improvement of feed spacers with optimal geometry remains a key challenge for spiral-wound membrane systems in water treatment due to their impact on the hydrodynamic performance and fouling development. In this work, novel spacer designs are proposed by intrinsically modifying cylindrical filaments through perforations. Three symmetric perforated spacers (1-Hole, 2-Hole, and 3-Hole) were in-house 3D-printed and experimentally evaluated in terms of permeate flux, feed channel pressure drop and membrane fouling. Spacer performance is characterized and compared with standard no perforated (0-Hole) design under constant feed pressure and constant feed flow rate. Perforations in the spacer filaments resulted in significantly lowering the net pressure drop across the spacer filled channel. The 3-Hole spacer was found to have the lowest pressure drop (50%-61%) compared to 0-Hole spacer for various average flow velocities. Regarding permeate flux production, the 0-Hole spacer produced 5.7 L m-2.h-1 and 6.6 L m-2.h-1 steady state flux for constant pressure and constant feed flow rate, respectively. The 1-Hole spacer was found to be the most efficient among the perforated spacers with 75% and 23% increase in permeate production at constant pressure and constant feed flow, respectively. Furthermore, membrane surface of 1-Hole spacer was found to be cleanest in terms of fouling, contributing to maintain higher permeate flux production. Hydrodynamic understanding of these perforated spacers is also quantified by performing Direct Numerical Simulation (DNS). The performance enhancement of these perforated spacers is attributed to the formation of micro-jets in the spacer cell that aided in producing enough unsteadiness/turbulence to clean the membrane surface and mitigate fouling phenomena. In the case of 1-Hole spacer, the unsteadiness intensity at the outlet of micro-jets and the shear stress fluctuations created inside the cells are higher than those observed with other perforated spacers, resulting in the cleanest membrane surface.
Copyright © 2018 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  CFD; Filtration; Fouling; Novel design spacers; Optical coherence tomography (OCT); Perforated spacers

Mesh:

Substances:

Year:  2018        PMID: 29715645     DOI: 10.1016/j.watres.2018.04.049

Source DB:  PubMed          Journal:  Water Res        ISSN: 0043-1354            Impact factor:   11.236


  3 in total

1.  Electrically Polarized Graphene-Blended Spacers for Organic Fouling Reduction in Forward Osmosis.

Authors:  Numan Yanar; Yejin Liang; Eunmok Yang; Hosik Park; Moon Son; Heechul Choi
Journal:  Membranes (Basel)       Date:  2021-01-04

2.  Novel hole-pillar spacer design for improved hydrodynamics and biofouling mitigation in membrane filtration.

Authors:  Adnan Qamar; Sarah Kerdi; Syed Muztuza Ali; Ho Kyong Shon; Johannes S Vrouwenvelder; Noreddine Ghaffour
Journal:  Sci Rep       Date:  2021-03-26       Impact factor: 4.379

3.  Hole-Type Spacers for More Stable Shale Gas-Produced Water Treatment by Forward Osmosis.

Authors:  Jawad AlQattan; Youngjin Kim; Sarah Kerdi; Adnan Qamar; Noreddine Ghaffour
Journal:  Membranes (Basel)       Date:  2021-01-03
  3 in total

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