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Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior

Composites of high-density polyethylene (HDPE) and expanded graphite (EG) are prepared for heat exchangers in multi-effect distillation (MED) desalination. At 50 wt.% EG loading, the thermal conductivity of HDPE was increased by 372%. Moreover, the surface wettability of the HDPE/EG composite was en...

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Autores principales: Sobolčiak, Patrik, Abdulgader, Asma, Mrlik, Miroslav, Popelka, Anton, A. Abdala, Ahmed, A. Aboukhlewa, Abdelnasser, Karkri, Mustapha, Kiepfer, Hendrik, Bart, Hans-Jörg, Krupa, Igor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7760837/
https://www.ncbi.nlm.nih.gov/pubmed/33265957
http://dx.doi.org/10.3390/polym12122863
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author Sobolčiak, Patrik
Abdulgader, Asma
Mrlik, Miroslav
Popelka, Anton
A. Abdala, Ahmed
A. Aboukhlewa, Abdelnasser
Karkri, Mustapha
Kiepfer, Hendrik
Bart, Hans-Jörg
Krupa, Igor
author_facet Sobolčiak, Patrik
Abdulgader, Asma
Mrlik, Miroslav
Popelka, Anton
A. Abdala, Ahmed
A. Aboukhlewa, Abdelnasser
Karkri, Mustapha
Kiepfer, Hendrik
Bart, Hans-Jörg
Krupa, Igor
author_sort Sobolčiak, Patrik
collection PubMed
description Composites of high-density polyethylene (HDPE) and expanded graphite (EG) are prepared for heat exchangers in multi-effect distillation (MED) desalination. At 50 wt.% EG loading, the thermal conductivity of HDPE was increased by 372%. Moreover, the surface wettability of the HDPE/EG composite was enhanced by corona and RF plasma treatment as demonstrated by the increase in surface free energy from 28.5 mJ/m(2) for untreated HDPE/EG to 55.5 and 54.5 mJ/m(2) for HDPE/EG treated by corona and RF plasma, respectively. This enhanced surface wettability was retained over a long time with only a 9% and 18% decrease in RF and corona plasma-treated samples’ surface energy after two months. The viscoelastic moduli and the complex viscosity profiles indicated that EG content dictates the optimum processing technique. At loading below 30 wt.%, the extrusion process is preferred, while above 30 wt.% loading, injection molding is preferred. The plasma treatment also improved the HDPE/EG composite overall heat transfer coefficient with an overall heat transfer coefficient of the composite reaching about 98% that of stainless steel. Moreover, the plasma-treated composite exhibited superior resistance to crystallization fouling in both CaSO(4) solution and artificial seawater compared to untreated composites and stainless-steel surfaces.
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spelling pubmed-77608372020-12-26 Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior Sobolčiak, Patrik Abdulgader, Asma Mrlik, Miroslav Popelka, Anton A. Abdala, Ahmed A. Aboukhlewa, Abdelnasser Karkri, Mustapha Kiepfer, Hendrik Bart, Hans-Jörg Krupa, Igor Polymers (Basel) Article Composites of high-density polyethylene (HDPE) and expanded graphite (EG) are prepared for heat exchangers in multi-effect distillation (MED) desalination. At 50 wt.% EG loading, the thermal conductivity of HDPE was increased by 372%. Moreover, the surface wettability of the HDPE/EG composite was enhanced by corona and RF plasma treatment as demonstrated by the increase in surface free energy from 28.5 mJ/m(2) for untreated HDPE/EG to 55.5 and 54.5 mJ/m(2) for HDPE/EG treated by corona and RF plasma, respectively. This enhanced surface wettability was retained over a long time with only a 9% and 18% decrease in RF and corona plasma-treated samples’ surface energy after two months. The viscoelastic moduli and the complex viscosity profiles indicated that EG content dictates the optimum processing technique. At loading below 30 wt.%, the extrusion process is preferred, while above 30 wt.% loading, injection molding is preferred. The plasma treatment also improved the HDPE/EG composite overall heat transfer coefficient with an overall heat transfer coefficient of the composite reaching about 98% that of stainless steel. Moreover, the plasma-treated composite exhibited superior resistance to crystallization fouling in both CaSO(4) solution and artificial seawater compared to untreated composites and stainless-steel surfaces. MDPI 2020-11-30 /pmc/articles/PMC7760837/ /pubmed/33265957 http://dx.doi.org/10.3390/polym12122863 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
Sobolčiak, Patrik
Abdulgader, Asma
Mrlik, Miroslav
Popelka, Anton
A. Abdala, Ahmed
A. Aboukhlewa, Abdelnasser
Karkri, Mustapha
Kiepfer, Hendrik
Bart, Hans-Jörg
Krupa, Igor
Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior
title Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior
title_full Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior
title_fullStr Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior
title_full_unstemmed Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior
title_short Thermally Conductive Polyethylene/Expanded Graphite Composites as Heat Transfer Surface: Mechanical, Thermo-Physical and Surface Behavior
title_sort thermally conductive polyethylene/expanded graphite composites as heat transfer surface: mechanical, thermo-physical and surface behavior
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7760837/
https://www.ncbi.nlm.nih.gov/pubmed/33265957
http://dx.doi.org/10.3390/polym12122863
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