Improvement of interlaminar properties of carbon fiber-reinforced epoxy composites using aluminum trihydroxide
- Authors
- Kwon, Dong-Jun; Park, Sung-Min; Kwon, Il-Jun; Park, Joung-Man; Jeong, Euigyung
- Issue Date
- Apr-2019
- Publisher
- 한국탄소학회
- Keywords
- Polymer matrix composites; Fiber/matrix bond; Interface/interphase; Fracture toughness
- Citation
- Carbon Letters, v.29, no.2, pp 183 - 191
- Pages
- 9
- Indexed
- SCIE
SCOPUS
KCI
- Journal Title
- Carbon Letters
- Volume
- 29
- Number
- 2
- Start Page
- 183
- End Page
- 191
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/73303
- DOI
- 10.1007/s42823-019-00019-x
- ISSN
- 1976-4251
2233-4998
- Abstract
- This study provides an economical and effective method to improve the interlaminar properties of carbon fiber-reinforced polymers (CFRPs) using aluminum trihydroxide (ATH) microparticles. ATH microparticles are cheap and are expected to show good affinity to epoxies in the matrix and sizing agents of the carbon fibers owing to the presence of three hydroxyl groups. In addition, ATH particles are reported to improve the mechanical properties of polymers when used as the reinforcement. In this study, ATH microparticles of various sizes, 1.5, 10, and 20 mu m, were used to improve the interlaminar properties of the CFRPs. ATH particles with a size of 1.5 mu m improved the tensile properties of the ATH/epoxy resin and did not significantly alter the curing behavior. The interfacial adhesion between the carbon fiber and the epoxy resin was also improved, and the impregnation of the resin mixture remained similar to that of the neat resin, resulting in no significant void and defect formation. Considering the above results, the resulting 1.5 m ATH-reinforced CFRP showed improved interlaminar properties compared to CFRP without ATH. However, 10 and 20 mu m ATH-reinforced CFRPs showed deteriorated interlaminar properties due to the diminished tensile properties of the resin itself and resin impregnation, which resulted in more voids and defects, despite the interfacial adhesion between the fiber and the matrix resin.
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- Appears in
Collections - 공과대학 > School of Materials Science&Engineering > Journal Articles
- 공학계열 > Dept.of Materials Engineering and Convergence Technology > Journal Articles

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