Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates

The development of advanced composite materials has taken center stage because of its advantages over traditional materials. Recently, carbon‐based advanced additives have shown promising results in the development of advanced polymer composites. The inter‐ and intra‐laminar fracture toughness in mo...

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Main Authors: Ali, A., Andriyana, A., Abu Hassan, A., Ang, B. C.
Format: Article
Language:English
Published: MDPI AG 2021
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Online Access:http://eprints.utm.my/id/eprint/94043/1/ShukurAbuHassan2021_FabricationandThermoElectroandMechanical.pdf
http://eprints.utm.my/id/eprint/94043/
http://dx.doi.org/10.3390/polym13091437
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.940432022-02-28T13:17:02Z http://eprints.utm.my/id/eprint/94043/ Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates Ali, A. Andriyana, A. Abu Hassan, A. Ang, B. C. TJ Mechanical engineering and machinery The development of advanced composite materials has taken center stage because of its advantages over traditional materials. Recently, carbon‐based advanced additives have shown promising results in the development of advanced polymer composites. The inter‐ and intra‐laminar fracture toughness in modes I and II, along with the thermal and electrical conductivities, were investi-gated. The HMWCNTs/epoxy composite was prepared using a multi‐dispersion method, followed by uniform coating at the mid‐layers of the CF/E prepregs interface using the spray coating technique. Analysis methods, such as double cantilever beam (DCB) and end notched flexure (ENF) tests, were carried out to study the mode I and II fracture toughness. The surface morphology of the composite was analyzed using field emission scanning electron microscopy (FESEM). The DCB test showed that the fracture toughness of the 0.2 wt.% and 0.4 wt.% HMWCNT composite laminates was improved by 39.15% and 115.05%, respectively, compared with the control sample. Furthermore, the ENF test showed that the mode II interlaminar fracture toughness for the composite laminate increased by 50.88% and 190%, respectively. The FESEM morphology results confirmed the HMWCNTs bridging at the fracture zones of the CF/E composite and the improved interlaminar fracture toughness. The thermogravimetric analysis (TGA) results demonstrated a strong intermolecular bonding between the epoxy and HMWCNTs, resulting in an improved thermal stability. Moreover, the differential scanning calorimetry (DSC) results confirmed that the addition of HMWCNT shifted the Tg to a higher temperature. An electrical conductivity study demonstrated that a higher CNT concentration in the composite laminate resulted in a higher conductivity improvement. This study confirmed that the demonstrated dispersion technique could create composite laminates with a strong interfacial bond interaction between the epoxy and HMWCNT, and thus improve their properties. MDPI AG 2021 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/94043/1/ShukurAbuHassan2021_FabricationandThermoElectroandMechanical.pdf Ali, A. and Andriyana, A. and Abu Hassan, A. and Ang, B. C. (2021) Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates. Polymers, 13 (9). ISSN 2073-4360 http://dx.doi.org/10.3390/polym13091437 DOI: 10.3390/polym13091437
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Ali, A.
Andriyana, A.
Abu Hassan, A.
Ang, B. C.
Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
description The development of advanced composite materials has taken center stage because of its advantages over traditional materials. Recently, carbon‐based advanced additives have shown promising results in the development of advanced polymer composites. The inter‐ and intra‐laminar fracture toughness in modes I and II, along with the thermal and electrical conductivities, were investi-gated. The HMWCNTs/epoxy composite was prepared using a multi‐dispersion method, followed by uniform coating at the mid‐layers of the CF/E prepregs interface using the spray coating technique. Analysis methods, such as double cantilever beam (DCB) and end notched flexure (ENF) tests, were carried out to study the mode I and II fracture toughness. The surface morphology of the composite was analyzed using field emission scanning electron microscopy (FESEM). The DCB test showed that the fracture toughness of the 0.2 wt.% and 0.4 wt.% HMWCNT composite laminates was improved by 39.15% and 115.05%, respectively, compared with the control sample. Furthermore, the ENF test showed that the mode II interlaminar fracture toughness for the composite laminate increased by 50.88% and 190%, respectively. The FESEM morphology results confirmed the HMWCNTs bridging at the fracture zones of the CF/E composite and the improved interlaminar fracture toughness. The thermogravimetric analysis (TGA) results demonstrated a strong intermolecular bonding between the epoxy and HMWCNTs, resulting in an improved thermal stability. Moreover, the differential scanning calorimetry (DSC) results confirmed that the addition of HMWCNT shifted the Tg to a higher temperature. An electrical conductivity study demonstrated that a higher CNT concentration in the composite laminate resulted in a higher conductivity improvement. This study confirmed that the demonstrated dispersion technique could create composite laminates with a strong interfacial bond interaction between the epoxy and HMWCNT, and thus improve their properties.
format Article
author Ali, A.
Andriyana, A.
Abu Hassan, A.
Ang, B. C.
author_facet Ali, A.
Andriyana, A.
Abu Hassan, A.
Ang, B. C.
author_sort Ali, A.
title Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
title_short Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
title_full Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
title_fullStr Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
title_full_unstemmed Fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
title_sort fabrication and thermo-electro and mechanical properties evaluation of helical multiwall carbon nanotube-carbon fiber/epoxy composite laminates
publisher MDPI AG
publishDate 2021
url http://eprints.utm.my/id/eprint/94043/1/ShukurAbuHassan2021_FabricationandThermoElectroandMechanical.pdf
http://eprints.utm.my/id/eprint/94043/
http://dx.doi.org/10.3390/polym13091437
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