Engineered multi-scale roughness of carbon nanofiller-embedded 3D printed spacers for membrane distillation. (1st March 2023)
- Record Type:
- Journal Article
- Title:
- Engineered multi-scale roughness of carbon nanofiller-embedded 3D printed spacers for membrane distillation. (1st March 2023)
- Main Title:
- Engineered multi-scale roughness of carbon nanofiller-embedded 3D printed spacers for membrane distillation
- Authors:
- Jeong, Seongeom
Gu, Boram
Choi, Subi
Ahn, Suk-kyun
Lee, Jaegeun
Lee, Jieun
Jeong, Sanghyun - Abstract:
- Highlights: Carbon nanofiller embedded spacers were fabricated by 3D printing technique. Carbon nanofiller spacer increased MD fluxes by 90–200% than without spacer. CNT made multi-scale roughness on the spacer surface that improving ion rejection. Effect of multi-scale roughness spacers on MD performance was demonstrated by CFD. Abstract: Membrane distillation (MD) transfers heat and mass simultaneously through a hydrophobic membrane. Hence, it is sensitive to both concentration and temperature polarisation (CP and TP) effects. In this study, we fabricated feed spacers to improve MD efficiency by alleviating the polarisation effects. First, a 3D printed spacer design was optimised to show superior performance amongst the others tested. Then, to further enhance spacer performance, we incorporated highly thermally stable carbon nanofillers, including carbon nanotubes (CNT) and graphene, in the fabrication of filaments for 3D printing. All the fabricated spacers had a degree of engineered multi-scale roughness, which was relatively high compared to that of the polylactic acid (PLA) spacer (control). The use of nanomaterial-incorporated spacers increased the mean permeate flux significantly compared to the PLA spacer (27.1 L/m 2 h (LMH)): a 43% and 75% increase when using the 1% graphene-incorporated spacer (38.9 LMH) and 2% CNT incorporated spacer (47.5 LMH), respectively. This could be attributed to the locally enhanced turbulence owing to the multi-scale roughness formed onHighlights: Carbon nanofiller embedded spacers were fabricated by 3D printing technique. Carbon nanofiller spacer increased MD fluxes by 90–200% than without spacer. CNT made multi-scale roughness on the spacer surface that improving ion rejection. Effect of multi-scale roughness spacers on MD performance was demonstrated by CFD. Abstract: Membrane distillation (MD) transfers heat and mass simultaneously through a hydrophobic membrane. Hence, it is sensitive to both concentration and temperature polarisation (CP and TP) effects. In this study, we fabricated feed spacers to improve MD efficiency by alleviating the polarisation effects. First, a 3D printed spacer design was optimised to show superior performance amongst the others tested. Then, to further enhance spacer performance, we incorporated highly thermally stable carbon nanofillers, including carbon nanotubes (CNT) and graphene, in the fabrication of filaments for 3D printing. All the fabricated spacers had a degree of engineered multi-scale roughness, which was relatively high compared to that of the polylactic acid (PLA) spacer (control). The use of nanomaterial-incorporated spacers increased the mean permeate flux significantly compared to the PLA spacer (27.1 L/m 2 h (LMH)): a 43% and 75% increase when using the 1% graphene-incorporated spacer (38.9 LMH) and 2% CNT incorporated spacer (47.5 LMH), respectively. This could be attributed to the locally enhanced turbulence owing to the multi-scale roughness formed on the spacer, which further increased the vaporisation rate through the membrane. Interestingly, only the CNT-embedded spacer markedly reduced the ion permeation through the membrane, which may be due to the effective reduction of CP. This further decreased with increasing CNT concentration, confirming that the CNT spacer can simultaneously reduce the CP and TP effects in the MD process. Finally, we successfully proved that the multi-scale roughness of the spacer surface induces micromixing near the membrane walls, which can improve the MD performance via computational fluid dynamics. Graphical abstract: Image, graphical abstract … (more)
- Is Part Of:
- Water research. Volume 231(2023)
- Journal:
- Water research
- Issue:
- Volume 231(2023)
- Issue Display:
- Volume 231, Issue 2023 (2023)
- Year:
- 2023
- Volume:
- 231
- Issue:
- 2023
- Issue Sort Value:
- 2023-0231-2023-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-03-01
- Subjects:
- 3D printing -- Computational fluid dynamics -- Membrane distillation -- Roughness -- Spacer
CNT Carbon nanotubes -- CFD Computational fluid dynamics -- CAD Computer-aided design -- CP Concentration polarisation -- DI Deionised -- DCMD Direct-contact membrane distillation -- FFF Fused filament fabrication -- IRE Ion rejection efficiency -- MPF Mean permeate flux -- MD Membrane distillation -- PLA Polylactic acid -- PVDF Polyvinylidene fluoride -- SEM Scanning electron microscope -- TP Temperature polarisation -- 3D Three-dimensional -- 2D Two-dimensional -- WCA Water contact angle
Water -- Pollution -- Research -- Periodicals
363.7394 - Journal URLs:
- http://catalog.hathitrust.org/api/volumes/oclc/1769499.html ↗
http://www.sciencedirect.com/science/journal/00431354 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.watres.2023.119649 ↗
- Languages:
- English
- ISSNs:
- 0043-1354
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 9273.400000
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 25658.xml