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Comparative study of slip activities and strain distribution in Ti6321 alloy with bimodal microstructure under dwell fatigue loadings

  • Northwestern Polytechnical University Xian
  • National & Local Joint Engineering Research Center for Precision Thermoforming Technology of Advanced Metal Materials
  • Ltd.
  • Luoyang Ship Material Research Institute
  • Northwest Institute for Nonferrous Metal Research

科研成果: 期刊稿件文章同行评审

1 引用 (Scopus)

摘要

Near-α titanium alloys are known to be susceptible to dwell fatigue debit, which has been linked to microstructure and the microscale slip deformation localization. However, prior research has predominantly focused on primary α (αp) microstructures, leaving a critical gap in systematic investigations of bimodal microstructures, which are of greater engineering relevance. This study systematically investigates slip activation mechanisms in Ti6321 alloy under pure fatigue and dwell-fatigue loading through integrated slip trace analysis and high-resolution digital image correlation (HR-DIC), focusing on αp and secondary α (αs) colony in transformed β (βt) microstructures. Key findings revealed that dwell-fatigue conditions significantly enhance basal and prismatic slip activation compared to pure fatigue, elevating plastic strain localization within slip bands. Hexagonal close-packed (HCP) elastic anisotropy and the superior strain rate sensitivity (SRS) of basal slips drive preferential activation across both hard- and soft-oriented regions, while prismatic slips exhibit sustained strain accumulation due to lower strain hardening. Furthermore, comparing to the αp, analysis demonstrates that αs colony prevent long-range slip through strain dispersion at interface, reducing dwell sensitivity. These results provide crystallographic insights into the mechanistic linkage between dwell fatigue effects and slip-mediated deformation, offering critical guidance for microstructure-informed alloy design and crystal plasticity model calibration.

源语言英语
文章编号109304
期刊International Journal of Fatigue
203
DOI
出版状态已出版 - 2月 2026

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