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Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites

The static and fatigue tensile properties of high-strength polyacrylonitrile (PAN)-based carbon (IMS60) and electronic (E)-class glass (E-glass) hybrid fiber-reinforced epoxy matrix composites (HFRPs) were investigated. The fiber orientations of the HFRP specimens were set to unidirectional with [(0...

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Autor principal: Naito, Kimiyoshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9012753/
https://www.ncbi.nlm.nih.gov/pubmed/35428749
http://dx.doi.org/10.1038/s41598-022-10245-5
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author Naito, Kimiyoshi
author_facet Naito, Kimiyoshi
author_sort Naito, Kimiyoshi
collection PubMed
description The static and fatigue tensile properties of high-strength polyacrylonitrile (PAN)-based carbon (IMS60) and electronic (E)-class glass (E-glass) hybrid fiber-reinforced epoxy matrix composites (HFRPs) were investigated. The fiber orientations of the HFRP specimens were set to unidirectional with [(0((IMS60)))/(0((E-glass)))](S) (subscript S means symmetry and [(0((IMS60)))/(0((E-glass)))/(0((E-glass)))/(0((IMS60)))]), [(0((E-glass)))/(0((IMS60)))](S), [(0((E-glass)))/(0((IMS60)))(2)](S), [(0((E-glass)))/(0((IMS60)))(3)](S), [(0((E-glass)))/(0((IMS60)))(5)](S), [(0((E-glass)))(2)/(0((IMS60)))](S), [(0((E-glass)))(3)/(0((IMS60)))](S), and [(0((E-glass)))(5)/(0((IMS60)))](S). Under static loading for the [(0((IMS60)))/(0((E-glass)))](S), [(0((E-glass)))/(0((IMS60)))](S), [(0((E-glass)))/(0((IMS60)))(2)](S), [(0((E-glass)))/(0((IMS60)))(3)](S), and [(0((E-glass)))/(0((IMS60)))(5)](S) HFRP specimens, the stress applied to the specimen was almost linearly proportional to the strain until failure. However, the tensile stress–strain curves of the [(0((E-glass)))(2)/(0((IMS60)))](S), [(0((E-glass)))(3)/(0((IMS60)))](S), and [(0((E-glass)))(5)/(0((IMS60)))](S) HFRP specimens had a complicated shape (jagged trace). The Weibull statistical distributions of the tensile strength values were also examined. The Weibull moduli for the [(0((E-glass)))/(0((IMS60)))](S), [(0((E-glass)))/(0((IMS60)))(2)](S), [(0((E-glass)))/(0((IMS60)))(3)](S), [(0((E-glass)))/(0((IMS60)))(5)](S), [(0((E-glass)))(2)/(0((IMS60)))](S), [(0((E-glass)))(3)/(0((IMS60)))](S), and [(0((E-glass)))(5)/(0((IMS60)))](S) HFRP specimens were higher than those for the mono carbon fiber-reinforced epoxy (CFRP) and glass fiber-reinforced epoxy (GFRP) specimens. Under fatigue loading, the fatigue properties of the HFRP specimens showed CFRP-dominant behaviour at high stress levels and GFRP-dominant behaviour at low stress levels. The fatigue properties of the HFRP specimens increased with increasing volume fraction of CFRP in the following order: ([(0((E-glass)))/(0((IMS60)))(5)](S) > [(0((E-glass)))/(0((IMS60)))(3)](S) > [(0((E-glass)))/(0((IMS60)))(2)](S) > [(0((IMS60)))/(0((E-glass)))](S) > [(0((E-glass)))/(0((IMS60)))](S) > [(0((E-glass)))(2)/(0((IMS60)))](S) > [(0((E-glass)))(3)/(0((IMS60)))](S) > [(0((E-glass)))(5)/(0((IMS60)))](S)).
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spelling pubmed-90127532022-04-18 Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites Naito, Kimiyoshi Sci Rep Article The static and fatigue tensile properties of high-strength polyacrylonitrile (PAN)-based carbon (IMS60) and electronic (E)-class glass (E-glass) hybrid fiber-reinforced epoxy matrix composites (HFRPs) were investigated. The fiber orientations of the HFRP specimens were set to unidirectional with [(0((IMS60)))/(0((E-glass)))](S) (subscript S means symmetry and [(0((IMS60)))/(0((E-glass)))/(0((E-glass)))/(0((IMS60)))]), [(0((E-glass)))/(0((IMS60)))](S), [(0((E-glass)))/(0((IMS60)))(2)](S), [(0((E-glass)))/(0((IMS60)))(3)](S), [(0((E-glass)))/(0((IMS60)))(5)](S), [(0((E-glass)))(2)/(0((IMS60)))](S), [(0((E-glass)))(3)/(0((IMS60)))](S), and [(0((E-glass)))(5)/(0((IMS60)))](S). Under static loading for the [(0((IMS60)))/(0((E-glass)))](S), [(0((E-glass)))/(0((IMS60)))](S), [(0((E-glass)))/(0((IMS60)))(2)](S), [(0((E-glass)))/(0((IMS60)))(3)](S), and [(0((E-glass)))/(0((IMS60)))(5)](S) HFRP specimens, the stress applied to the specimen was almost linearly proportional to the strain until failure. However, the tensile stress–strain curves of the [(0((E-glass)))(2)/(0((IMS60)))](S), [(0((E-glass)))(3)/(0((IMS60)))](S), and [(0((E-glass)))(5)/(0((IMS60)))](S) HFRP specimens had a complicated shape (jagged trace). The Weibull statistical distributions of the tensile strength values were also examined. The Weibull moduli for the [(0((E-glass)))/(0((IMS60)))](S), [(0((E-glass)))/(0((IMS60)))(2)](S), [(0((E-glass)))/(0((IMS60)))(3)](S), [(0((E-glass)))/(0((IMS60)))(5)](S), [(0((E-glass)))(2)/(0((IMS60)))](S), [(0((E-glass)))(3)/(0((IMS60)))](S), and [(0((E-glass)))(5)/(0((IMS60)))](S) HFRP specimens were higher than those for the mono carbon fiber-reinforced epoxy (CFRP) and glass fiber-reinforced epoxy (GFRP) specimens. Under fatigue loading, the fatigue properties of the HFRP specimens showed CFRP-dominant behaviour at high stress levels and GFRP-dominant behaviour at low stress levels. The fatigue properties of the HFRP specimens increased with increasing volume fraction of CFRP in the following order: ([(0((E-glass)))/(0((IMS60)))(5)](S) > [(0((E-glass)))/(0((IMS60)))(3)](S) > [(0((E-glass)))/(0((IMS60)))(2)](S) > [(0((IMS60)))/(0((E-glass)))](S) > [(0((E-glass)))/(0((IMS60)))](S) > [(0((E-glass)))(2)/(0((IMS60)))](S) > [(0((E-glass)))(3)/(0((IMS60)))](S) > [(0((E-glass)))(5)/(0((IMS60)))](S)). Nature Publishing Group UK 2022-04-15 /pmc/articles/PMC9012753/ /pubmed/35428749 http://dx.doi.org/10.1038/s41598-022-10245-5 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Naito, Kimiyoshi
Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
title Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
title_full Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
title_fullStr Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
title_full_unstemmed Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
title_short Static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
title_sort static and fatigue tensile properties of carbon/glass hybrid fiber-reinforced epoxy composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9012753/
https://www.ncbi.nlm.nih.gov/pubmed/35428749
http://dx.doi.org/10.1038/s41598-022-10245-5
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