Translaminar fracture in (non–)hybrid thin-ply fibre-reinforced composites

An in-depth examination through a novel mini-compact tension specimen compatible with microscale 4D computed tomography

Journal Article (2025)
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DOI related publication
https://doi.org/10.1016/j.compositesa.2024.108529 Final published version
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Publication Year
2025
Language
English
Affiliation
External organisation
Journal title
Composites Part A: Applied Science and Manufacturing
Volume number
188
Article number
108529
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295

Abstract

Translaminar fracture toughness is pivotal for notch sensitivity and damage tolerance of fibre-reinforced composites. Hybridisation offers a promising pathway for enhancing this parameter in thin-ply composites. Three novel mini-compact tension specimen geometries were investigated for their competence in microscale characterisation of translaminar fracture using in-situ synchrotron radiation computed tomography (SRCT). Only “mini-protruded” design resulted in stable crack propagation with adequate crack increments. Based on this design, five baseline and hybrid cross-ply configurations incorporating low- and high-strain carbon fibres were studied. Crack propagation in low- and high-strain baseline configurations was stable. For interlayer and intrayarn fibre-hybrid configurations, a correlation between load–displacement curves and delamination is observed. The SRCT data confirmed that 90° ply-blocks cushion the interaction between 0° plies, enabling independent fracture. Additionally, crack fronts in 90° plies advance further than those in 0° plies. Moreover, mechanical interlocking and bundle bending within 0° plies serve as supplementary mechanisms for energy dissipation.