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March 5, 2026Journal of Composites Science0 citationsOpen Access

Fracture Toughening of Carbon Fiber Composites Based on Electrospun Nanofiber Interleafs

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MSMatthias SchärFHNW University of Applied Sciences and ArtsAYAta YoosefinejadDepartment of CommerceNSNaresh D. SanandiyaDepartment of Commerce

Key Points

  • The aim is to improve the interlaminar fracture toughness of carbon fiber-reinforced polymer laminates using electrospun nanofiber mats.
  • Inserted thermoplastic nanofiber veils between carbon fiber plies
  • Conducted double cantilever beam tests for Mode I fracture toughness
  • Performed end notch flexure tests for Mode II fracture toughness
  • Accounted for thermally induced residual stresses in toughness calculations
  • Used a symmetric quasi-isotropic laminate configuration
  • Demonstrated improved delamination fracture toughness in Mode I and Mode II
  • Provided consistent toughness evaluation with numerical predictions
  • Highlighted the potential use of nanofiber interleaving in aerospace and wind energy applications

Abstract

Delamination is a critical failure mode in composite laminates that degrades the structural performance and load-carrying capacity. This study investigates the improvement of Mode I and Mode II interlaminar fracture toughness of carbon fiber-reinforced polymer (CFRP) laminates through the interleaving of electrospun thermoplastic nanofiber mats. Nanofiber veils were inserted between carbon fiber plies to enhance resistance to delamination under tensile opening (Mode I) and in-plane shear (Mode II) loading. The effects of nanofiber interleaving were evaluated using double cantilever beam (DCB) tests for Mode I and end notch flexure (ENF) tests for Mode II. Both tests were conducted on a symmetric quasi-isotropic laminate -45/45/90/05s containing a thick unidirectional 0° ply at the mid-plane. Thermally induced residual stresses resulting from mismatches in ply coefficients of thermal expansion and unsymmetric arm lay-ups were accounted for in the experimental determination of fracture toughness. These stresses, generated during cooling from the cure temperature, influence the effective strain energy release rate and were included in the fracture toughness calculations to ensure accurate toughness evaluation and consistency with numerical predictions. The results demonstrate improved delamination fracture toughness, highlighting the potential of nanofiber interleaving for aerospace and wind energy applications.

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Cite This Study

Schär et al. (2026) studied this question.

synapsesocial.com/papers/69a91d9bd6127c7a504c096bhttps://doi.org/10.3390/jcs10030134
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Fracture toughening of carbon fiber composites based on electrospun nanofiber interleafs2026
  2. 2Nano-Engineered Sandwich Interlayers for Simultaneous Functionalization and Delamination Resistance in CFRPs2026
  3. 3Experimental analysis of nanofiber embedding and layer thickness on fracture toughness in fiber–epoxy laminates2026
  4. 4J-Integral Experimental Reduction Reveals Fracture Toughness Improvements in Thin-Ply Carbon Fiber Laminates with Aligned Carbon Nanotube Interlaminar Reinforcement2024 · 17 citations
  5. 5Study on Interlaminar Fracture Toughness of Carbon Fiber/Epoxy Composites Toughened With Polyethersulfone/Carbon Nanotubes/Nano‐Alumina Films2026