High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles

Three-dimensional (3D) five-directional braided composites are extensively applied in aeronautics and national defense due to their integrity and structural superiorities. In this paper, 3D five-directional braided carbon/epoxy composites were manufactured, and the high temperature mechanical respon...

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Main Authors: Hong-mei Zuo, Dian-sen Li, Lei Jiang
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/12/21/3506
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spelling doaj-099c09a76d3f4b8dbbb62e68dad904252020-11-25T02:15:41ZengMDPI AGMaterials1996-19442019-10-011221350610.3390/ma12213506ma12213506High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding AnglesHong-mei Zuo0Dian-sen Li1Lei Jiang2Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology, Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, ChinaKey Laboratory of Bio-Inspired Smart Interfacial Science and Technology, Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, ChinaKey Laboratory of Bio-Inspired Smart Interfacial Science and Technology, Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, ChinaThree-dimensional (3D) five-directional braided composites are extensively applied in aeronautics and national defense due to their integrity and structural superiorities. In this paper, 3D five-directional braided carbon/epoxy composites were manufactured, and the high temperature mechanical response and failure mechanisms of composites with braiding angles of 21° and 32° were studied. The out-of-plane compression tests of composites with different braiding angles were conducted at temperatures ranging from 25 °C to 180 °C. Then compression stress−strain curves, compression mechanical response, and failure modes of composites at high temperatures were analyzed and compared. The results show that compression stress−strain curves linearly increased at the initial stage and dropped at various degrees at different temperatures for composites with different braiding angles. The temperature and braiding angle were both important parameters affecting out-of-plane compression properties of 3D five-directional braided composites. Mechanical properties decreased with increasing temperature for both 21° and 32° specimens. Moreover, composites with a small braiding angle possessed higher properties at each temperature point. The morphologies manifested that the failures were a symmetric ±45° shear crack for 21° specimens and a thorough 45° shear crack for 32° specimens, and a 45° fracture weakened with increasing temperature.https://www.mdpi.com/1996-1944/12/21/35063d braided compositesfive-directional braidinghigh-temperature propertiesfailure mechanism
collection DOAJ
language English
format Article
sources DOAJ
author Hong-mei Zuo
Dian-sen Li
Lei Jiang
spellingShingle Hong-mei Zuo
Dian-sen Li
Lei Jiang
High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles
Materials
3d braided composites
five-directional braiding
high-temperature properties
failure mechanism
author_facet Hong-mei Zuo
Dian-sen Li
Lei Jiang
author_sort Hong-mei Zuo
title High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles
title_short High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles
title_full High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles
title_fullStr High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles
title_full_unstemmed High Temperature Mechanical Response and Failure Analysis of 3D Five-Directional Braided Composites with Different Braiding Angles
title_sort high temperature mechanical response and failure analysis of 3d five-directional braided composites with different braiding angles
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2019-10-01
description Three-dimensional (3D) five-directional braided composites are extensively applied in aeronautics and national defense due to their integrity and structural superiorities. In this paper, 3D five-directional braided carbon/epoxy composites were manufactured, and the high temperature mechanical response and failure mechanisms of composites with braiding angles of 21° and 32° were studied. The out-of-plane compression tests of composites with different braiding angles were conducted at temperatures ranging from 25 °C to 180 °C. Then compression stress−strain curves, compression mechanical response, and failure modes of composites at high temperatures were analyzed and compared. The results show that compression stress−strain curves linearly increased at the initial stage and dropped at various degrees at different temperatures for composites with different braiding angles. The temperature and braiding angle were both important parameters affecting out-of-plane compression properties of 3D five-directional braided composites. Mechanical properties decreased with increasing temperature for both 21° and 32° specimens. Moreover, composites with a small braiding angle possessed higher properties at each temperature point. The morphologies manifested that the failures were a symmetric ±45° shear crack for 21° specimens and a thorough 45° shear crack for 32° specimens, and a 45° fracture weakened with increasing temperature.
topic 3d braided composites
five-directional braiding
high-temperature properties
failure mechanism
url https://www.mdpi.com/1996-1944/12/21/3506
work_keys_str_mv AT hongmeizuo hightemperaturemechanicalresponseandfailureanalysisof3dfivedirectionalbraidedcompositeswithdifferentbraidingangles
AT diansenli hightemperaturemechanicalresponseandfailureanalysisof3dfivedirectionalbraidedcompositeswithdifferentbraidingangles
AT leijiang hightemperaturemechanicalresponseandfailureanalysisof3dfivedirectionalbraidedcompositeswithdifferentbraidingangles
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