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Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment

During the production of oil and gas, a large amount of oily wastewater is generated, which would pollute the environment if discharged without proper treatment. As one of the most promising treatment options, membrane material used for oily wastewater treatment should possess desirable properties o...

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Autores principales: Mat Nawi, Normi Izati, Chean, Ho Min, Shamsuddin, Norazanita, Bilad, Muhammad Roil, Narkkun, Thanitporn, Faungnawakij, Kajornsak, Khan, Asim Laeeq
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7345896/
https://www.ncbi.nlm.nih.gov/pubmed/32560031
http://dx.doi.org/10.3390/membranes10060121
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author Mat Nawi, Normi Izati
Chean, Ho Min
Shamsuddin, Norazanita
Bilad, Muhammad Roil
Narkkun, Thanitporn
Faungnawakij, Kajornsak
Khan, Asim Laeeq
author_facet Mat Nawi, Normi Izati
Chean, Ho Min
Shamsuddin, Norazanita
Bilad, Muhammad Roil
Narkkun, Thanitporn
Faungnawakij, Kajornsak
Khan, Asim Laeeq
author_sort Mat Nawi, Normi Izati
collection PubMed
description During the production of oil and gas, a large amount of oily wastewater is generated, which would pollute the environment if discharged without proper treatment. As one of the most promising treatment options, membrane material used for oily wastewater treatment should possess desirable properties of high hydraulic performance combined with high membrane fouling resistance. This project employs the vapor induced phase separation (VIPS) technique to develop a hydrophilic polyvinylidene fluoride (PVDF) membrane with polyethylene glycol (PEG) as an additive for produced water treatment. Results show that thanks to its slow nonsolvent intake, the VIPS method hinders additive leaching during the cast film immersion. The results also reveal that the exposure of the film to the open air before immersion greatly influences the structure of the developed membranes. By extending the exposure time from 0 to 30 min, the membrane morphology change from typical asymmetric with large macrovoids to the macrovoid-free porous symmetric membrane with a granular structure, which corresponds to 35% increment of steady-state permeability to 189 L·m(−2)h(−1)bar(−1), while maintaining >90% of oil rejection. It was also found that more PEG content resides in the membrane matrix when the exposure time is extended, contributes to the elevation of surface hydrophilicity, which improves the membrane antifouling properties. Overall results demonstrate the potential of VIPS method for the fabrication of hydrophilic PVDF membrane by helping to preserve hydrophilic additive in the membrane matrices.
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spelling pubmed-73458962020-07-09 Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment Mat Nawi, Normi Izati Chean, Ho Min Shamsuddin, Norazanita Bilad, Muhammad Roil Narkkun, Thanitporn Faungnawakij, Kajornsak Khan, Asim Laeeq Membranes (Basel) Article During the production of oil and gas, a large amount of oily wastewater is generated, which would pollute the environment if discharged without proper treatment. As one of the most promising treatment options, membrane material used for oily wastewater treatment should possess desirable properties of high hydraulic performance combined with high membrane fouling resistance. This project employs the vapor induced phase separation (VIPS) technique to develop a hydrophilic polyvinylidene fluoride (PVDF) membrane with polyethylene glycol (PEG) as an additive for produced water treatment. Results show that thanks to its slow nonsolvent intake, the VIPS method hinders additive leaching during the cast film immersion. The results also reveal that the exposure of the film to the open air before immersion greatly influences the structure of the developed membranes. By extending the exposure time from 0 to 30 min, the membrane morphology change from typical asymmetric with large macrovoids to the macrovoid-free porous symmetric membrane with a granular structure, which corresponds to 35% increment of steady-state permeability to 189 L·m(−2)h(−1)bar(−1), while maintaining >90% of oil rejection. It was also found that more PEG content resides in the membrane matrix when the exposure time is extended, contributes to the elevation of surface hydrophilicity, which improves the membrane antifouling properties. Overall results demonstrate the potential of VIPS method for the fabrication of hydrophilic PVDF membrane by helping to preserve hydrophilic additive in the membrane matrices. MDPI 2020-06-16 /pmc/articles/PMC7345896/ /pubmed/32560031 http://dx.doi.org/10.3390/membranes10060121 Text en © 2020 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mat Nawi, Normi Izati
Chean, Ho Min
Shamsuddin, Norazanita
Bilad, Muhammad Roil
Narkkun, Thanitporn
Faungnawakij, Kajornsak
Khan, Asim Laeeq
Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment
title Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment
title_full Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment
title_fullStr Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment
title_full_unstemmed Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment
title_short Development of Hydrophilic PVDF Membrane Using Vapour Induced Phase Separation Method for Produced Water Treatment
title_sort development of hydrophilic pvdf membrane using vapour induced phase separation method for produced water treatment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7345896/
https://www.ncbi.nlm.nih.gov/pubmed/32560031
http://dx.doi.org/10.3390/membranes10060121
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