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Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination

This study presented a detailed investigation into the performance of a plate–frame water gap membrane distillation (WGMD) system for the desalination of untreated real seawater. One approach to improving the performance of WGMD is through the proper selection of cooling plate material, which plays...

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Autores principales: Lawal, Dahiru U., Abdulazeez, Ismail, Alsalhy, Qusay F., Usman, Jamilu, Abba, Sani. I., Mansir, Ibrahim B., Sathyamurthy, Ravishankar, Kaleekkal, Noel Jacob, Imteyaz, Binash
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10536650/
https://www.ncbi.nlm.nih.gov/pubmed/37755226
http://dx.doi.org/10.3390/membranes13090804
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author Lawal, Dahiru U.
Abdulazeez, Ismail
Alsalhy, Qusay F.
Usman, Jamilu
Abba, Sani. I.
Mansir, Ibrahim B.
Sathyamurthy, Ravishankar
Kaleekkal, Noel Jacob
Imteyaz, Binash
author_facet Lawal, Dahiru U.
Abdulazeez, Ismail
Alsalhy, Qusay F.
Usman, Jamilu
Abba, Sani. I.
Mansir, Ibrahim B.
Sathyamurthy, Ravishankar
Kaleekkal, Noel Jacob
Imteyaz, Binash
author_sort Lawal, Dahiru U.
collection PubMed
description This study presented a detailed investigation into the performance of a plate–frame water gap membrane distillation (WGMD) system for the desalination of untreated real seawater. One approach to improving the performance of WGMD is through the proper selection of cooling plate material, which plays a vital role in enhancing the gap vapor condensation process. Hence, the influence of different cooling plate materials was examined and discussed. Furthermore, two different hydrophobic micro-porous polymeric membranes of similar mean pore sizes were utilized in the study. The influence of key operating parameters, including the feed water temperature and flow rate, was examined against the system vapor flux and gained output ratio (GOR). In addition, the used membranes were characterized by means of different techniques in terms of surface morphology, liquid entry pressure, water contact angle, pore size distribution, and porosity. Findings revealed that, at all conditions, the PTFE membrane exhibits superior vapor flux and energy efficiency (GOR), with 9.36% to 14.36% higher flux at a 0.6 to 1.2 L/min feed flow rate when compared to the PVDF membrane. The copper plate, which has the highest thermal conductivity, attained the highest vapor flux, while the acrylic plate, which has an extra-low thermal conductivity, recorded the lowest vapor flux. The increasing order of GOR values for different cooling plates is acrylic < HDPE < copper < aluminum < brass < stainless steel. Results also indicated that increasing the feed temperature increases the vapor flux almost exponentially to a maximum flux value of 30.36 kg/m(2)hr. The system GOR also improves in a decreasing pattern to a maximum value of 0.4049. Moreover, a long-term test showed that the PTFE membrane, which exhibits superior hydrophobicity, registered better salt rejection stability. The use of copper as a cooling plate material for better system performance is recommended, while cooling plate materials with very low thermal conductivities, such as a low thermally conducting polymer, are discouraged.
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spelling pubmed-105366502023-09-29 Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination Lawal, Dahiru U. Abdulazeez, Ismail Alsalhy, Qusay F. Usman, Jamilu Abba, Sani. I. Mansir, Ibrahim B. Sathyamurthy, Ravishankar Kaleekkal, Noel Jacob Imteyaz, Binash Membranes (Basel) Article This study presented a detailed investigation into the performance of a plate–frame water gap membrane distillation (WGMD) system for the desalination of untreated real seawater. One approach to improving the performance of WGMD is through the proper selection of cooling plate material, which plays a vital role in enhancing the gap vapor condensation process. Hence, the influence of different cooling plate materials was examined and discussed. Furthermore, two different hydrophobic micro-porous polymeric membranes of similar mean pore sizes were utilized in the study. The influence of key operating parameters, including the feed water temperature and flow rate, was examined against the system vapor flux and gained output ratio (GOR). In addition, the used membranes were characterized by means of different techniques in terms of surface morphology, liquid entry pressure, water contact angle, pore size distribution, and porosity. Findings revealed that, at all conditions, the PTFE membrane exhibits superior vapor flux and energy efficiency (GOR), with 9.36% to 14.36% higher flux at a 0.6 to 1.2 L/min feed flow rate when compared to the PVDF membrane. The copper plate, which has the highest thermal conductivity, attained the highest vapor flux, while the acrylic plate, which has an extra-low thermal conductivity, recorded the lowest vapor flux. The increasing order of GOR values for different cooling plates is acrylic < HDPE < copper < aluminum < brass < stainless steel. Results also indicated that increasing the feed temperature increases the vapor flux almost exponentially to a maximum flux value of 30.36 kg/m(2)hr. The system GOR also improves in a decreasing pattern to a maximum value of 0.4049. Moreover, a long-term test showed that the PTFE membrane, which exhibits superior hydrophobicity, registered better salt rejection stability. The use of copper as a cooling plate material for better system performance is recommended, while cooling plate materials with very low thermal conductivities, such as a low thermally conducting polymer, are discouraged. MDPI 2023-09-19 /pmc/articles/PMC10536650/ /pubmed/37755226 http://dx.doi.org/10.3390/membranes13090804 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lawal, Dahiru U.
Abdulazeez, Ismail
Alsalhy, Qusay F.
Usman, Jamilu
Abba, Sani. I.
Mansir, Ibrahim B.
Sathyamurthy, Ravishankar
Kaleekkal, Noel Jacob
Imteyaz, Binash
Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination
title Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination
title_full Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination
title_fullStr Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination
title_full_unstemmed Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination
title_short Experimental Investigation of a Plate–Frame Water Gap Membrane Distillation System for Seawater Desalination
title_sort experimental investigation of a plate–frame water gap membrane distillation system for seawater desalination
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10536650/
https://www.ncbi.nlm.nih.gov/pubmed/37755226
http://dx.doi.org/10.3390/membranes13090804
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