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Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact

Filament-wound composite tubular structures are frequently used in transmission systems, pressure vessels, and sports equipment. In this study, the failure mechanism of composite tubes reinforced with different fibres under low-velocity impact (LVI) and the radial residual compression performance of...

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Autores principales: Xiao, Jie, Shi, Han, Tao, Lei, Qi, Liangliang, Min, Wei, Zhang, Hui, Yu, Muhuo, Sun, Zeyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7560404/
https://www.ncbi.nlm.nih.gov/pubmed/32957720
http://dx.doi.org/10.3390/ma13184143
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author Xiao, Jie
Shi, Han
Tao, Lei
Qi, Liangliang
Min, Wei
Zhang, Hui
Yu, Muhuo
Sun, Zeyu
author_facet Xiao, Jie
Shi, Han
Tao, Lei
Qi, Liangliang
Min, Wei
Zhang, Hui
Yu, Muhuo
Sun, Zeyu
author_sort Xiao, Jie
collection PubMed
description Filament-wound composite tubular structures are frequently used in transmission systems, pressure vessels, and sports equipment. In this study, the failure mechanism of composite tubes reinforced with different fibres under low-velocity impact (LVI) and the radial residual compression performance of the impacted composite tubes were investigated. Four fibres, including carbon fiber-T800, carbon fiber-T700, basalt fibre, and glass fibre, were used to fabricate the composite tubes by the winding process. The internal matrix/fibre interface of the composite tubes before the LVI and their failure mechanism after the LVI were investigated by scanning electric microscopy and X-ray micro-computed tomography, respectively. The results showed that the composite tubes mainly fractured through the delamination and fibre breakage damage under the impact of 15 J energy. Delamination and localized fibre breakage occur in the glass fibre-reinforced composite (GFRP) and basalt fibre-reinforced composite (BFRP) tubes when subjected to LVI. While fibre breakage damage occurs globally in the carbon fibre-reinforced composite (CFRP) tubes. The GFRP tube showed the best impact resistance among all the tubes investigated. The basalt fibre-reinforced composite (BFRP) tube exhibited the lowest structural impact resistance. The impact resistance of the CFRP-T700 and CFRP-T800 tube differed slightly. The radial residual compression strength (R-RCS) of the BFRP tube is not sensitive to the impact, while that of the GFRP tube is shown to be highly sensitive to the impact.
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spelling pubmed-75604042020-10-22 Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact Xiao, Jie Shi, Han Tao, Lei Qi, Liangliang Min, Wei Zhang, Hui Yu, Muhuo Sun, Zeyu Materials (Basel) Article Filament-wound composite tubular structures are frequently used in transmission systems, pressure vessels, and sports equipment. In this study, the failure mechanism of composite tubes reinforced with different fibres under low-velocity impact (LVI) and the radial residual compression performance of the impacted composite tubes were investigated. Four fibres, including carbon fiber-T800, carbon fiber-T700, basalt fibre, and glass fibre, were used to fabricate the composite tubes by the winding process. The internal matrix/fibre interface of the composite tubes before the LVI and their failure mechanism after the LVI were investigated by scanning electric microscopy and X-ray micro-computed tomography, respectively. The results showed that the composite tubes mainly fractured through the delamination and fibre breakage damage under the impact of 15 J energy. Delamination and localized fibre breakage occur in the glass fibre-reinforced composite (GFRP) and basalt fibre-reinforced composite (BFRP) tubes when subjected to LVI. While fibre breakage damage occurs globally in the carbon fibre-reinforced composite (CFRP) tubes. The GFRP tube showed the best impact resistance among all the tubes investigated. The basalt fibre-reinforced composite (BFRP) tube exhibited the lowest structural impact resistance. The impact resistance of the CFRP-T700 and CFRP-T800 tube differed slightly. The radial residual compression strength (R-RCS) of the BFRP tube is not sensitive to the impact, while that of the GFRP tube is shown to be highly sensitive to the impact. MDPI 2020-09-17 /pmc/articles/PMC7560404/ /pubmed/32957720 http://dx.doi.org/10.3390/ma13184143 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Xiao, Jie
Shi, Han
Tao, Lei
Qi, Liangliang
Min, Wei
Zhang, Hui
Yu, Muhuo
Sun, Zeyu
Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact
title Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact
title_full Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact
title_fullStr Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact
title_full_unstemmed Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact
title_short Effect of Fibres on the Failure Mechanism of Composite Tubes under Low-Velocity Impact
title_sort effect of fibres on the failure mechanism of composite tubes under low-velocity impact
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7560404/
https://www.ncbi.nlm.nih.gov/pubmed/32957720
http://dx.doi.org/10.3390/ma13184143
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