Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment

Understanding the thermo-oxidative ageing behavior of carbon fiber/epoxy resin interfaces at multiple scales is crucial for structural optimization and durable design of composites. Here we report the effects of oxygen entering the interface on the 3D ageing crack evolutions, interface spatial struc...

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Main Authors: Long, Jing, Xu, Feng, Sun, Baozhong, Xiao, Zhongmin, Gu, Bohong
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/171311
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1713112023-10-20T05:40:08Z Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment Long, Jing Xu, Feng Sun, Baozhong Xiao, Zhongmin Gu, Bohong School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Environmental Degradation Molecular Dynamics Understanding the thermo-oxidative ageing behavior of carbon fiber/epoxy resin interfaces at multiple scales is crucial for structural optimization and durable design of composites. Here we report the effects of oxygen entering the interface on the 3D ageing crack evolutions, interface spatial structures, and multi-scale dynamic mechanisms for carbon fiber/epoxy composites under a thermal environment using experiments and molecular dynamics (MD) simulations. The dynamic behaviors under ambient temperature environments were studied for comparison. Ageing cracks first appear at the interface and then spread to the surrounding resin-rich region as the ageing time increases. Interface cracks provide channels for oxygen to enter the interior of the composite. The MD results show that interface systems with fewer oxygen molecules have serious interface cracks, weaker interaction energies and stronger diffusion capabilities than those with more oxygen molecules. The oxygen amounts entered the interface and the intermolecular interactions affect the interface dynamic behaviors. High temperature promotes the molecular movement, accelerates the interface cracking, weakens the interaction energy, and improves the diffusion capability. The diffusion of oxygen molecule from the interface to the epoxy matrix is a gradual process and is affected by the interface cracks. The authors acknowledge the financial supports from the National Science Foundation of China (Grant Number 51875099). The first author acknowledges the China Scholarship Council (CSC) for providing funds (No. 202206630052) to support her study and research at Nanyang Technological University. 2023-10-20T05:40:07Z 2023-10-20T05:40:07Z 2023 Journal Article Long, J., Xu, F., Sun, B., Xiao, Z. & Gu, B. (2023). Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment. Composites Science and Technology, 242, 110165-. https://dx.doi.org/10.1016/j.compscitech.2023.110165 0266-3538 https://hdl.handle.net/10356/171311 10.1016/j.compscitech.2023.110165 2-s2.0-85166006857 242 110165 en Composites Science and Technology © 2023 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Environmental Degradation
Molecular Dynamics
spellingShingle Engineering::Mechanical engineering
Environmental Degradation
Molecular Dynamics
Long, Jing
Xu, Feng
Sun, Baozhong
Xiao, Zhongmin
Gu, Bohong
Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
description Understanding the thermo-oxidative ageing behavior of carbon fiber/epoxy resin interfaces at multiple scales is crucial for structural optimization and durable design of composites. Here we report the effects of oxygen entering the interface on the 3D ageing crack evolutions, interface spatial structures, and multi-scale dynamic mechanisms for carbon fiber/epoxy composites under a thermal environment using experiments and molecular dynamics (MD) simulations. The dynamic behaviors under ambient temperature environments were studied for comparison. Ageing cracks first appear at the interface and then spread to the surrounding resin-rich region as the ageing time increases. Interface cracks provide channels for oxygen to enter the interior of the composite. The MD results show that interface systems with fewer oxygen molecules have serious interface cracks, weaker interaction energies and stronger diffusion capabilities than those with more oxygen molecules. The oxygen amounts entered the interface and the intermolecular interactions affect the interface dynamic behaviors. High temperature promotes the molecular movement, accelerates the interface cracking, weakens the interaction energy, and improves the diffusion capability. The diffusion of oxygen molecule from the interface to the epoxy matrix is a gradual process and is affected by the interface cracks.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Long, Jing
Xu, Feng
Sun, Baozhong
Xiao, Zhongmin
Gu, Bohong
format Article
author Long, Jing
Xu, Feng
Sun, Baozhong
Xiao, Zhongmin
Gu, Bohong
author_sort Long, Jing
title Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
title_short Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
title_full Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
title_fullStr Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
title_full_unstemmed Multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
title_sort multi-scale dynamic behaviors of oxygen entering carbon fiber/epoxy resin interfaces under thermal environment
publishDate 2023
url https://hdl.handle.net/10356/171311
_version_ 1781793763187752960