Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites
The mechanical properties of novel low percolation melt-mixed 3D hierarchical graphene/polypropylene nanocomposites are analyzed in this study. The analysis spans a broad range of techniques and time scales, from impact to tensile, dynamic mechanical behavior, and creep. The applicability of the tim...
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doaj-4474a82e82db43bcb5599e63584328642020-11-25T02:36:39ZengMDPI AGPolymers2073-43602020-06-01121309130910.3390/polym12061309Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene NanocompositesKarolina Gaska0Georgia C. Manika1Thomas Gkourmpis2Davide Tranchida3Antonis Gitsas4Roland Kádár5Department of Industrial and Materials Science, Division of Engineering Materials, Chalmers University of Technology, SE-412 96 Gothenburg, SwedenDepartment of Industrial and Materials Science, Division of Engineering Materials, Chalmers University of Technology, SE-412 96 Gothenburg, SwedenInnovation & Technology, Borealis AB, SE-444 86 Stenungsund, SwedenInnovation & Technology, Borealis Polyolefine GmbH, St.-Peter-Straße 25, 4021 Linz, AustriaInnovation & Technology, Borealis Polyolefine GmbH, St.-Peter-Straße 25, 4021 Linz, AustriaDepartment of Industrial and Materials Science, Division of Engineering Materials, Chalmers University of Technology, SE-412 96 Gothenburg, SwedenThe mechanical properties of novel low percolation melt-mixed 3D hierarchical graphene/polypropylene nanocomposites are analyzed in this study. The analysis spans a broad range of techniques and time scales, from impact to tensile, dynamic mechanical behavior, and creep. The applicability of the time–temperature superposition principle and its limitations in the construction of the master curve for the isotactic polypropylene (iPP)-based graphene nanocomposites has been verified and presented. The Williams–Landel–Ferry method has been used to evaluate the dynamics and also Cole–Cole curves were presented to verify the thermorheological character of the nanocomposites. Short term (quasi-static) tensile tests, creep, and impact strength measurements were used to evaluate the load transfer efficiency. A significant increase of Young’s modulus with increasing filler content indicates reasonably good dispersion and adhesion between the iPP and the filler. The Young’s modulus results were compared with predicted modulus values using Halpin–Tsai model. An increase in brittleness resulting in lower impact strength values has also been recorded.https://www.mdpi.com/2073-4360/12/6/1309graphenenanocompositesmechanical propertiestime–temperature superposition |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Karolina Gaska Georgia C. Manika Thomas Gkourmpis Davide Tranchida Antonis Gitsas Roland Kádár |
spellingShingle |
Karolina Gaska Georgia C. Manika Thomas Gkourmpis Davide Tranchida Antonis Gitsas Roland Kádár Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites Polymers graphene nanocomposites mechanical properties time–temperature superposition |
author_facet |
Karolina Gaska Georgia C. Manika Thomas Gkourmpis Davide Tranchida Antonis Gitsas Roland Kádár |
author_sort |
Karolina Gaska |
title |
Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites |
title_short |
Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites |
title_full |
Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites |
title_fullStr |
Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites |
title_full_unstemmed |
Mechanical Behavior of Melt-Mixed 3D Hierarchical Graphene/Polypropylene Nanocomposites |
title_sort |
mechanical behavior of melt-mixed 3d hierarchical graphene/polypropylene nanocomposites |
publisher |
MDPI AG |
series |
Polymers |
issn |
2073-4360 |
publishDate |
2020-06-01 |
description |
The mechanical properties of novel low percolation melt-mixed 3D hierarchical graphene/polypropylene nanocomposites are analyzed in this study. The analysis spans a broad range of techniques and time scales, from impact to tensile, dynamic mechanical behavior, and creep. The applicability of the time–temperature superposition principle and its limitations in the construction of the master curve for the isotactic polypropylene (iPP)-based graphene nanocomposites has been verified and presented. The Williams–Landel–Ferry method has been used to evaluate the dynamics and also Cole–Cole curves were presented to verify the thermorheological character of the nanocomposites. Short term (quasi-static) tensile tests, creep, and impact strength measurements were used to evaluate the load transfer efficiency. A significant increase of Young’s modulus with increasing filler content indicates reasonably good dispersion and adhesion between the iPP and the filler. The Young’s modulus results were compared with predicted modulus values using Halpin–Tsai model. An increase in brittleness resulting in lower impact strength values has also been recorded. |
topic |
graphene nanocomposites mechanical properties time–temperature superposition |
url |
https://www.mdpi.com/2073-4360/12/6/1309 |
work_keys_str_mv |
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