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Characterization of Thermodynamic-Fatigue Behavior and Rapid Prediction of Fatigue Limit for Angle-Ply CF/PAEK Composites Based on Infrared Thermography

  • Ke Chen
  • , Ye Jie Qiao
  • , Ai Jia Li
  • , Zhen Qiang Zhao
  • , Jia Huang
  • , Chao Zhang
  • Northwestern Polytechnical University Xian
  • Key Laboratory on the Impact Protection and Safety Assessment of Civil Aviation Vehicle

Research output: Contribution to journalArticlepeer-review

Abstract

This study investigates the thermodynamic-fatigue behavior of angle-ply thermoplastic composite laminates using infrared thermography and proposes a rapid fatigue limit prediction method. The research first characterizes fatigue mechanisms, including matrix cracking, fiber breakage, and the characteristic thermo-mechanical coupling damage of thermoplastic composites, and identifies three thermodynamic phases during cyclic loading. A thermographic fatigue experiment is conducted to analyze the effects of loading amplitude and fiber orientation on temperature rising, revealing a nonlinear relationship governed by shear stress and fiber angle. Building upon these findings, a novel prediction method was developed by integrating a piecewise temperature–stress function with an iterative judgment algorithm to efficiently estimate the fatigue limits of laminates with various stacking sequences ([0°/90°]3s, [±25°]3s, [±35°]3s, [±45°]3s). The results demonstrate strong agreement with conventional fatigue tests, offering improved accuracy compared to existing approaches while significantly reducing testing time and cost.

Original languageEnglish
Pages (from-to)4465-4479
Number of pages15
JournalPolymer Composites
Volume47
Issue number5
DOIs
StatePublished - 10 Mar 2026

Keywords

  • angle-ply laminates
  • fatigue limit prediction
  • infrared thermography
  • thermodynamic-fatigue behavior
  • thermoplastic composites

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