4.4 Article

Fracture Toughness of Hybrid Carbon Fibre/Epoxy Enhanced by Graphene and Carbon Nanotubes

Journal

APPLIED COMPOSITE MATERIALS
Volume 28, Issue 4, Pages 1111-1125

Publisher

SPRINGER
DOI: 10.1007/s10443-021-09906-x

Keywords

Nano particles (A; Material); Particle-reinforced composites (A; Material); Fracture toughness (B; Property); Crack (C; Analysis); Double cantilever beam test (D; Testing)

Funding

  1. National Graphene Institute

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This study investigates the effect of graphene nanoplatelets, multi-walled carbon nanotubes, and their hybridizations on the Mode I interlaminar fracture toughness of a carbon fibre reinforced polymer system. It was found that dispersing the smallest GNP size in a specific solvent can significantly enhance the fracture toughness.
Carbon-based nanoparticles have attracted considerable attention in materials science and engineering fields as they can significantly improve the electro-thermo-mechanical properties of polymer-based materials. With the need of enhancing the mechanical property through the thickness direction of a carbon fibre reinforced polymer (CFRP) system, this study investigates the effect of graphene nanoplatelets (GNP), multi-walled carbon nanotubes (MWCNT) and their hybridisations on its Mode I interlaminar fracture toughness. Various nanoplatelet sizes and weight percentages are compared to prohibit their agglomeration in epoxy which can drastically reduce the mechanical properties of CFRP. The smallest GNP size, 1 mu m, dispersed in the n-methyl-2-pyrrolidone solvent leads to an advanced 146% enhancement of Mode I interlaminar fracture toughness on the CFRP system. The acetone solvent is found less surface compatible with the nanoplatelets, but provides a simple and environmentally friendly manufacturing process. The hybrid GNP/MWCNT with 1wt% content dispersed in acetone solvent shows the synergistic effect and reaches a 120% enhancement of Mode I interlaminar fracture toughness of CFRP. Additionally, the application of the thin film hot press technique on nanoplatelets enhanced CFRP demonstrates an effective and promising solution to manufacture homogeneous multi-phase composites.

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