Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites

A study on the flexural properties of hybrid glass and carbon fibre reinforced epoxy composites is presented in this paper. Three combinations of the carbon and glass fibres, i.e. S-2&T700S, S-2&TR30S and E&TR30S, were chosen to make hybrid composite specimens. Specimens were made by t...

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Main Authors: Dong, Chensong, Davies, Ian
Format: Journal Article
Published: Sage 2013
Online Access:http://hdl.handle.net/20.500.11937/20439
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author Dong, Chensong
Davies, Ian
author_facet Dong, Chensong
Davies, Ian
author_sort Dong, Chensong
building Curtin Institutional Repository
collection Online Access
description A study on the flexural properties of hybrid glass and carbon fibre reinforced epoxy composites is presented in this paper. Three combinations of the carbon and glass fibres, i.e. S-2&T700S, S-2&TR30S and E&TR30S, were chosen to make hybrid composite specimens. Specimens were made by the hand lay-up process in an intra-ply configuration with varying degrees of glass fibres added to the surface of a carbon laminate. These specimens were then tested in the three point bend configuration in accordance with ASTM D790-07 at a span to depth ratio of 32. The failure modes were examined under an optical microscope, and it was found that the dominant failure mode was compressive failure. The flexural behaviour was also simulated using finite element analysis (FEA), and the flexural modulus, flexural strength and strain to failure were calculated. Both the experiments and FEA suggest flexural modulus decreases with increasing percentage of glass fibres. Positive hybrid effects exist by substituting carbon fibres with glass fibres on the compressive surface.
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spelling curtin-20.500.11937-204392017-09-13T13:50:23Z Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites Dong, Chensong Davies, Ian A study on the flexural properties of hybrid glass and carbon fibre reinforced epoxy composites is presented in this paper. Three combinations of the carbon and glass fibres, i.e. S-2&T700S, S-2&TR30S and E&TR30S, were chosen to make hybrid composite specimens. Specimens were made by the hand lay-up process in an intra-ply configuration with varying degrees of glass fibres added to the surface of a carbon laminate. These specimens were then tested in the three point bend configuration in accordance with ASTM D790-07 at a span to depth ratio of 32. The failure modes were examined under an optical microscope, and it was found that the dominant failure mode was compressive failure. The flexural behaviour was also simulated using finite element analysis (FEA), and the flexural modulus, flexural strength and strain to failure were calculated. Both the experiments and FEA suggest flexural modulus decreases with increasing percentage of glass fibres. Positive hybrid effects exist by substituting carbon fibres with glass fibres on the compressive surface. 2013 Journal Article http://hdl.handle.net/20.500.11937/20439 10.1177/1464420712459396 Sage restricted
spellingShingle Dong, Chensong
Davies, Ian
Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
title Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
title_full Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
title_fullStr Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
title_full_unstemmed Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
title_short Flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
title_sort flexural properties of glass and carbon fiber reinforced epoxy hybrid composites
url http://hdl.handle.net/20.500.11937/20439