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Through-thickness crystallinity gradient controls warpage reduction in CF/PAEK via in-situ consolidation automated fiber placement

  • Ye Wang
  • , Zhibo Xin
  • , Jie Yuan
  • , Yugang Duan
  • , Hong Xiao
  • , Fanghong Yang
  • , Daijun Zhang
  • , Fuping Li
  • Xi'an Jiaotong University
  • Western China Science and Technology Innovation Harbour
  • Beijing Institute of Aeronautical Materials
  • National Key Laboratory of Advanced Composites

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

Aiming at reducing the warpage that occurs during in-situ consolidation automated fiber placement (ISC-AFP) of thermoplastic composites, this article explores, for the first time, the through-thickness crystallinity distribution characteristics of laminate and its effect on warpage. A tool-temperature-compensation isothermal consolidation (TTC-IC) technology is proposed to achieve warpage suppression. The research results indicate that laminate crystallinity decreases gradually from the bottom to the top layer. At a fixed initial consolidation temperature, higher tool temperatures (Ttool) reduce the through-thickness temperature gradient during consolidation. However, as Ttool increases, the through-thickness crystallinity gradient of the laminate also increases, resulting in greater warpage. This indicates that crystallinity gradient dominates the warpage. Via the proposed TTC-IC technology, the through-thickness crystallization gradient of the laminate was reduced, achieving a reduction of 33.33% in warpage and 46.1% in porosity. This study addresses the knowledge gap in warpage formation mechanisms for laminates fabricated via ISC-AFP and introduces a novel in-situ technological approach for warpage control.

Original languageEnglish
Article number109310
JournalComposites Part A: Applied Science and Manufacturing
Volume200
DOIs
StatePublished - Jan 2026

Keywords

  • Crystallization gradient
  • In-situ consolidation automated fiber placement
  • Tool-temperature-compensation isothermal consolidation
  • Warpage

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