Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions

The purpose of this study is to investigate the relationship between its microstructure and bending strength of SiC-C/C (carbon-carbon) composites. By using the phenolic resin and carbon fiber bundle, the carbon fiber reinforced plastics (CFRP) precursor was prepared by employing filament winding te...

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Main Authors: Kiyotaka Obunai, Daisuke Mikami, Tadao Fukuta, Koichi Ozaki
Format: Article
Language:English
Published: AIMS Press 2018-05-01
Series:AIMS Materials Science
Subjects:
Online Access:http://www.aimspress.com/Materials/article/2024/fulltext.html
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spelling doaj-8a86cd465dfc4f318e7e0c1a0b6a9c8f2020-11-25T00:34:24ZengAIMS PressAIMS Materials Science2372-04842018-05-015349450710.3934/matersci.2018.3.494matersci-05-03-494Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditionsKiyotaka Obunai0Daisuke Mikami1Tadao Fukuta2Koichi Ozaki3Faculty of Science and Engineering, Doshiaha University, JAPANGraduate school of Okayama Prefectural University, JAPANFaculty of Computer Science and System Engineering Okayama Prefectural University, JAPANFaculty of Computer Science and System Engineering Okayama Prefectural University, JAPANThe purpose of this study is to investigate the relationship between its microstructure and bending strength of SiC-C/C (carbon-carbon) composites. By using the phenolic resin and carbon fiber bundle, the carbon fiber reinforced plastics (CFRP) precursor was prepared by employing filament winding technique. To modify the phenolic resin, the micro-sized glass fiber was added. The CFRP precursor was charred at high temperature at Argon atmosphere to obtain SiC-C/C composites. The matrix of composites was densified by resin impregnation done by cold isostatic pressing (CIP) method. The detail observation of matrix after charred revealed that when precursor resin was modified with glass fiber, the direction of thermal crack at matrix showed complex manner, while thermal crack at un-modified matrix only appeared along fiber direction. Because of the presence of complex thermal crack, the matrix of SiC-C/C composite showed high porosity at un-densified condition and effectively densified by CIP to promoting resin flow toward thermal crack. The bending and compression test results showed that bending strength and inter-laminar shear strength of SiC-C/C composites was increased by densification. Moreover, the fractured surface observations suggested that the presence of synthesized SiC nano-whisker at inter-laminar enhances the apparent shear strength due to mechanical bridging between laminar.http://www.aimspress.com/Materials/article/2024/fulltext.htmlSiC-C/C compositesdensificationbending strengthinter-layer shear strength
collection DOAJ
language English
format Article
sources DOAJ
author Kiyotaka Obunai
Daisuke Mikami
Tadao Fukuta
Koichi Ozaki
spellingShingle Kiyotaka Obunai
Daisuke Mikami
Tadao Fukuta
Koichi Ozaki
Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions
AIMS Materials Science
SiC-C/C composites
densification
bending strength
inter-layer shear strength
author_facet Kiyotaka Obunai
Daisuke Mikami
Tadao Fukuta
Koichi Ozaki
author_sort Kiyotaka Obunai
title Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions
title_short Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions
title_full Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions
title_fullStr Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions
title_full_unstemmed Microstructure and mechanical properties of newly developed SiC-C/C composites under atmospheric conditions
title_sort microstructure and mechanical properties of newly developed sic-c/c composites under atmospheric conditions
publisher AIMS Press
series AIMS Materials Science
issn 2372-0484
publishDate 2018-05-01
description The purpose of this study is to investigate the relationship between its microstructure and bending strength of SiC-C/C (carbon-carbon) composites. By using the phenolic resin and carbon fiber bundle, the carbon fiber reinforced plastics (CFRP) precursor was prepared by employing filament winding technique. To modify the phenolic resin, the micro-sized glass fiber was added. The CFRP precursor was charred at high temperature at Argon atmosphere to obtain SiC-C/C composites. The matrix of composites was densified by resin impregnation done by cold isostatic pressing (CIP) method. The detail observation of matrix after charred revealed that when precursor resin was modified with glass fiber, the direction of thermal crack at matrix showed complex manner, while thermal crack at un-modified matrix only appeared along fiber direction. Because of the presence of complex thermal crack, the matrix of SiC-C/C composite showed high porosity at un-densified condition and effectively densified by CIP to promoting resin flow toward thermal crack. The bending and compression test results showed that bending strength and inter-laminar shear strength of SiC-C/C composites was increased by densification. Moreover, the fractured surface observations suggested that the presence of synthesized SiC nano-whisker at inter-laminar enhances the apparent shear strength due to mechanical bridging between laminar.
topic SiC-C/C composites
densification
bending strength
inter-layer shear strength
url http://www.aimspress.com/Materials/article/2024/fulltext.html
work_keys_str_mv AT kiyotakaobunai microstructureandmechanicalpropertiesofnewlydevelopedsiccccompositesunderatmosphericconditions
AT daisukemikami microstructureandmechanicalpropertiesofnewlydevelopedsiccccompositesunderatmosphericconditions
AT tadaofukuta microstructureandmechanicalpropertiesofnewlydevelopedsiccccompositesunderatmosphericconditions
AT koichiozaki microstructureandmechanicalpropertiesofnewlydevelopedsiccccompositesunderatmosphericconditions
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