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Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage

Thesis (PhD)--University of Pretoria, 2016.

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Other Authors: Focke, Walter Wilhelm
Format: Thesis
Language:English
Published: University of Pretoria 2016
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access_status_str Open Access
author2 Focke, Walter Wilhelm
author_browse Focke, Walter Wilhelm
author_facet Focke, Walter Wilhelm
collection Thesis
dc_rights_str_mv © 2016 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria.
description Thesis (PhD)--University of Pretoria, 2016.
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institution University of Pretoria (South Africa)
language English
last_indexed 2026-06-10T12:36:30.275Z
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publishDate 2016
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publisher University of Pretoria
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spelling oai:repository.up.ac.za:2263/55979 Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage Focke, Walter Wilhelm Mhike, Washington UCTD Graphite nanoplatelets Rotational moulding Antistatic Impact strength Stearyl alcohol Stearic acid Phase change material Enthalpy Thermal conductivity Engineering, built environment and information technology theses SDG-07 Engineering, built environment and information technology theses SDG-09 Engineering, built environment and information technology theses SDG-12 Thesis (PhD)--University of Pretoria, 2016. The overall aim of this study was to obtain a facile method of synthesizing graphite nanoplatelets from commercial expandable graphite and use these as functional fillers in rotational moulding applications and phase change materials for energy storage. Two commercial expandable graphites were evaluated as precursors for the synthesis of graphite nanoplatelets. Microwave radiation treatment was shown to be more efficient in exfoliating expandable graphite than furnace heating. The expandable graphite with better exfoliating characteristics was selected. XRD results of this graphite showed that it was a high stage graphite intercalation compound. Graphite nanoplatelets with an average particle size of 13 μm and an estimated thickness of about 76 nm were prepared by microwave exfoliation and ultrasonication-assisted liquid phase exfoliation in isopropanol from the selected expandable graphite. Prior to the selection of isopropanol as the ultrasonication media, various exfoliation media that encompassed different solvents and water with various surfactants had been evaluated, on the basis of their acoustic cavitation characteristics. The graphite nanoplatelets were used as a functional additive to fabricate linear low density polyethylene (LLDPE) and poly(ethylene-co-vinyl acetate) (EVA) based nanocomposites using the rotational moulding (rotomoulding) process. The dry blending approach yielded surface resistivities within the static dissipation range (antistatic) at filler loadings as low as 0.25 wt.% (0.1 vol.%). However, even at this low graphite content, impact properties were significantly reduced compared to the neat polymers. Bilayer mouldings via the double dumping method proved to be a feasible approach to achieve both acceptable mechanical properties and antistatic properties. This was achieved by rotomoulding nanocomposites with a 1 mm outer layer containing the filler and a 2 mm inner layer of neat LLDPE. Excellent fire resistance, in terms of cone calorimeter testing, was achieved when the outer layer also contained 10 wt.% expandable graphite. Pseudo binary mixtures of stearyl alcohol/commercial triple pressed stearic acid where prepared and characterized as a new phase change material (PCM) for energy storage. A facile method of preparing highly thermally conductive stearyl alcohol/stearic acid phase change material/graphite nanoplatelets (GNPs) nanocomposites was developed. Inclusion of the GNPs in the PCM matrix reduced the enthalpy of melting and crystallization marginally. However, the PCM/nanocomposite exhibited negligible super cooling. At 10 wt.% loading, the graphite nanoplatelets enhanced the thermal conductivity of the PCM by close to 600 % and 1200 % in the solid and molten states, respectively. Thermal conductivity modelling showed that the substantial thermal conductivity enhancement was as a result of relatively low interfacial thermal resistance between the PCM matrix and GNPs. The PCM/GNPs nanocomposites also showed excellent thermal reliability after being subjected to accelerated thermal cycling tests of 100 melting and freezing cycles. Settling tests showed the PCM/GNPs nanocomposite with 10 wt.% GNPs was stable after 60 days, with no apparent separation between the PCM matrix and the graphite nanoplatelets. National Research Foundation (NRF) Department of Science and Technology mi2026 Chemical Engineering PhD unrestricted SDG-07: Affordable and clean energy SDG-09: Industry, innovation and infrastructure SDG-12: Responsible consumption and production 2016-07-19T12:18:47Z 2016-07-19T12:18:47Z 2016 2016 Thesis Mhike, W 2016, Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage, PhD Thesis, University of Pretoria, Pretoria, viewed yymmdd <http://hdl.handle.net/2263/55979> S2016 http://hdl.handle.net/2263/55979 en © 2016 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria. application/pdf University of Pretoria
spellingShingle UCTD
Graphite nanoplatelets
Rotational moulding
Antistatic
Impact strength
Stearyl alcohol
Stearic acid
Phase change material
Enthalpy
Thermal conductivity
Engineering, built environment and information technology theses SDG-07
Engineering, built environment and information technology theses SDG-09
Engineering, built environment and information technology theses SDG-12
Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
title Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
title_full Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
title_fullStr Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
title_full_unstemmed Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
title_short Nano-graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
title_sort nano graphite as a functional additive for rotationally mouldable polymers and phase change materials for energy storage
topic UCTD
Graphite nanoplatelets
Rotational moulding
Antistatic
Impact strength
Stearyl alcohol
Stearic acid
Phase change material
Enthalpy
Thermal conductivity
Engineering, built environment and information technology theses SDG-07
Engineering, built environment and information technology theses SDG-09
Engineering, built environment and information technology theses SDG-12
url http://hdl.handle.net/2263/55979