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March 6, 2026Composites Science and Technology2 citationsOpen Access

Experimental–numerical phase-field modelling of ductile and fatigue fracture in short fibre-reinforced polymeric adhesives

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ADAamir DeanMHM. HematipourPKPavan Kumar Asur Vijaya Kumar

Key Points

  • The research aims to develop a predictive framework for understanding ductile and fatigue fracture in short fibre-reinforced polymeric adhesives.
  • Conducted quasi-static and tension-tension fatigue tests on SFRP adhesives.
  • Implemented a phase-field approach to model fracture behavior.
  • Developed an anisotropic phase-field model that includes pressure sensitivity and non-associative plastic flow.
  • Conducted finite element simulations to validate the model against experimental data.
  • Observed anisotropic elasto-plastic behavior in the adhesives.
  • Found orientation-dependent fatigue life affecting the durability of joints.
  • Demonstrated good agreement between numerical simulations and experimental stress-strain responses, S-N curves, and crack behaviors.

Abstract

Structural adhesives are essential in wind turbine blades, where bonded joints are subjected to complex static and cyclic loading and are prone to fatigue-driven failure. Recently developed short fibre-reinforced polymeric (SFRP) adhesives offer enhanced mechanical performance, but their fracture behaviour is strongly influenced by fibre orientation and anisotropy. This study presents an experimental-numerical framework for predicting quasi-static and fatigue fracture in SFRP adhesives using a phase-field approach. An experimental campaign, including quasi-static and tension-tension fatigue tests with full-field strain measurements, reveals pronounced anisotropic elasto-plastic behaviour, orientation-dependent fatigue life, and distinct damage mechanisms under monotonic and cyclic loading. Based on these observations, an anisotropic phase-field model for ductile fracture is developed and coupled with an invariant-based transversely isotropic elasto-plastic constitutive formulation with pressure sensitivity and non-associative plastic flow. Fatigue effects are incorporated through a thermodynamically consistent degradation of fracture toughness driven by accumulated energy dissipation. The model is implemented within a finite element framework and validated against experiments through simulations of dog-bone and single-edge notched specimens. The numerical results show very good agreement with experimental stress–strain responses, S-N curves, and crack initiation and propagation behaviour, demonstrating the capability of the proposed framework to predict the durability of SFRP adhesive joints under static and cyclic loading.

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Cite This Study

Dean et al. (2026) studied this question.

synapsesocial.com/papers/69aa6ee2531e4c4a9ff59018https://doi.org/10.1016/j.compscitech.2026.111588
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