TY - CONF
T1 - Tensile properties of carbon nanotubes-sheets/carbon fibers/epoxy and carbon nanotubes-grafted carbon fibers/epoxy hybrid composites
AU - Naito, Kimiyoshi
AU - Premalal, Vikum
AU - Oguma, Hiroyuki
AU - Shimamura, Yoshinobu
AU - Inoue, Yoku
N1 - Funding Information:
This work was supported by JSPS (Japan Society for the Promotion of Science) KAKENHI 22360282 and JST (Japan Science and Technology Agency) through Advanced Low Carbon Technology Research and Development Program (ALCA).
Publisher Copyright:
© 2015 International Committee on Composite Materials. All rights reserved.
PY - 2015
Y1 - 2015
N2 - An interesting technique for modifying the carbon fiber reinforced polymer matrix composites is hybridizing with carbon nanotubes (CNT). CNT-sheets/carbon fibers and CNT-grafted carbon fibers offer potential benefits of nanoscale reinforcement to the well-established fibrous composites by creating multiscale hybrid micro-nano composites. However, the mechanical properties of polymer matrix composites reinforced with the CNT-sheets/carbon fibers and CNT-grafted carbon fibers have not been evaluated. It is important to clarify the tensile properties of polymer matrix composites reinforced with the CNT-sheets/carbon fibers and CNT-grafted carbon fibers. In this study, the tensile properties of carbon fiber reinforced polymer matrix composites incorporating CNT-sheets (CNT-sheets/carbon fibers/epoxy hybrid composites) and CNT-grafted carbon fibers (CNT-grafted carbon fibers/epoxy hybrid composites) were investigated. For the CNT-sheets/carbon fibers/epoxy hybrid composites, the tensile modulus of hybrid composites was higher than that in the as-received state. The tensile strength of CNT-sheets/polyacrylonitrile (PAN)-based carbon fibers/epoxy hybrid composite was lower than that in the as-received state and the tensile strength of CNT-sheets/pitch-based carbon fibers/epoxy hybrid composite was higher than that in the as-received state. On the other hand, for the CNT-grafted carbon fibers/epoxy hybrid composites, the tensile modulus of hybrid composites was higher than that in the as-received state and tensile strength of hybrid composites was almost similar to that in as-received state.
AB - An interesting technique for modifying the carbon fiber reinforced polymer matrix composites is hybridizing with carbon nanotubes (CNT). CNT-sheets/carbon fibers and CNT-grafted carbon fibers offer potential benefits of nanoscale reinforcement to the well-established fibrous composites by creating multiscale hybrid micro-nano composites. However, the mechanical properties of polymer matrix composites reinforced with the CNT-sheets/carbon fibers and CNT-grafted carbon fibers have not been evaluated. It is important to clarify the tensile properties of polymer matrix composites reinforced with the CNT-sheets/carbon fibers and CNT-grafted carbon fibers. In this study, the tensile properties of carbon fiber reinforced polymer matrix composites incorporating CNT-sheets (CNT-sheets/carbon fibers/epoxy hybrid composites) and CNT-grafted carbon fibers (CNT-grafted carbon fibers/epoxy hybrid composites) were investigated. For the CNT-sheets/carbon fibers/epoxy hybrid composites, the tensile modulus of hybrid composites was higher than that in the as-received state. The tensile strength of CNT-sheets/polyacrylonitrile (PAN)-based carbon fibers/epoxy hybrid composite was lower than that in the as-received state and the tensile strength of CNT-sheets/pitch-based carbon fibers/epoxy hybrid composite was higher than that in the as-received state. On the other hand, for the CNT-grafted carbon fibers/epoxy hybrid composites, the tensile modulus of hybrid composites was higher than that in the as-received state and tensile strength of hybrid composites was almost similar to that in as-received state.
KW - Carbon fibers
KW - Carbon nanotubes
KW - Hybrid composites
KW - Tensile test
UR - http://www.scopus.com/inward/record.url?scp=85053161108&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85053161108&partnerID=8YFLogxK
M3 - Paper
AN - SCOPUS:85053161108
T2 - 20th International Conference on Composite Materials, ICCM 2015
Y2 - 19 July 2015 through 24 July 2015
ER -