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Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles

This paper presents the preparation and thermal/physical characterization of phase change materials (PCMs) based on poly(ethylene glycol) 400 g·mol(−1) and nano-enhanced by either carbon black (CB), a raw graphite/diamond nanomixture (G/D-r), a purified graphite/diamond nanomixture (G/D-p) or nano-D...

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Autores principales: Cabaleiro, David, Hamze, Samah, Fal, Jacek, Marcos, Marco A., Estellé, Patrice, Żyła, Gaweł
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7353210/
https://www.ncbi.nlm.nih.gov/pubmed/32549366
http://dx.doi.org/10.3390/nano10061168
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author Cabaleiro, David
Hamze, Samah
Fal, Jacek
Marcos, Marco A.
Estellé, Patrice
Żyła, Gaweł
author_facet Cabaleiro, David
Hamze, Samah
Fal, Jacek
Marcos, Marco A.
Estellé, Patrice
Żyła, Gaweł
author_sort Cabaleiro, David
collection PubMed
description This paper presents the preparation and thermal/physical characterization of phase change materials (PCMs) based on poly(ethylene glycol) 400 g·mol(−1) and nano-enhanced by either carbon black (CB), a raw graphite/diamond nanomixture (G/D-r), a purified graphite/diamond nanomixture (G/D-p) or nano-Diamond nanopowders with purity grades of 87% or 97% (nD87 and nD97, respectively). Differential scanning calorimetry and oscillatory rheology experiments were used to provide an insight into the thermal and mechanical changes taking place during solid-liquid phase transitions of the carbon-based suspensions. PEG400-based samples loaded with 1.0 wt.% of raw graphite/diamond nanomixture (G/D-r) exhibited the lowest sub-cooling effect (with a reduction of ~2 K regarding neat PEG400). The influences that the type of carbon-based nanoadditive and nanoparticle loading (0.50 and 1.0 wt.%) have on dynamic viscosity, thermal conductivity, density and surface tension were also investigated in the temperature range from 288 to 318 K. Non-linear rheological experiments showed that all dispersions exhibited a non-Newtonian pseudo-plastic behavior, which was more noticeable in the case of carbon black nanofluids at low shear rates. The highest enhancements in thermal conductivity were observed for graphite/diamond nanomixtures (3.3–3.6%), while nano-diamond suspensions showed the largest modifications in density (0.64–0.66%). Reductions in surface tension were measured for the two nano-diamond nanopowders (nD87 and nD97), while slight increases (within experimental uncertainties) were observed for dispersions prepared using the other three carbon-based nanopowders. Finally, a good agreement was observed between the experimental surface tension measurements performed using a Du Noüy ring tensiometer and a drop-shape analyzer.
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spelling pubmed-73532102020-07-15 Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles Cabaleiro, David Hamze, Samah Fal, Jacek Marcos, Marco A. Estellé, Patrice Żyła, Gaweł Nanomaterials (Basel) Article This paper presents the preparation and thermal/physical characterization of phase change materials (PCMs) based on poly(ethylene glycol) 400 g·mol(−1) and nano-enhanced by either carbon black (CB), a raw graphite/diamond nanomixture (G/D-r), a purified graphite/diamond nanomixture (G/D-p) or nano-Diamond nanopowders with purity grades of 87% or 97% (nD87 and nD97, respectively). Differential scanning calorimetry and oscillatory rheology experiments were used to provide an insight into the thermal and mechanical changes taking place during solid-liquid phase transitions of the carbon-based suspensions. PEG400-based samples loaded with 1.0 wt.% of raw graphite/diamond nanomixture (G/D-r) exhibited the lowest sub-cooling effect (with a reduction of ~2 K regarding neat PEG400). The influences that the type of carbon-based nanoadditive and nanoparticle loading (0.50 and 1.0 wt.%) have on dynamic viscosity, thermal conductivity, density and surface tension were also investigated in the temperature range from 288 to 318 K. Non-linear rheological experiments showed that all dispersions exhibited a non-Newtonian pseudo-plastic behavior, which was more noticeable in the case of carbon black nanofluids at low shear rates. The highest enhancements in thermal conductivity were observed for graphite/diamond nanomixtures (3.3–3.6%), while nano-diamond suspensions showed the largest modifications in density (0.64–0.66%). Reductions in surface tension were measured for the two nano-diamond nanopowders (nD87 and nD97), while slight increases (within experimental uncertainties) were observed for dispersions prepared using the other three carbon-based nanopowders. Finally, a good agreement was observed between the experimental surface tension measurements performed using a Du Noüy ring tensiometer and a drop-shape analyzer. MDPI 2020-06-15 /pmc/articles/PMC7353210/ /pubmed/32549366 http://dx.doi.org/10.3390/nano10061168 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
Cabaleiro, David
Hamze, Samah
Fal, Jacek
Marcos, Marco A.
Estellé, Patrice
Żyła, Gaweł
Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles
title Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles
title_full Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles
title_fullStr Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles
title_full_unstemmed Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles
title_short Thermal and Physical Characterization of PEG Phase Change Materials Enhanced by Carbon-Based Nanoparticles
title_sort thermal and physical characterization of peg phase change materials enhanced by carbon-based nanoparticles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7353210/
https://www.ncbi.nlm.nih.gov/pubmed/32549366
http://dx.doi.org/10.3390/nano10061168
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