PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 5, 2026Materials Science and Engineering A1 citationsOpen Access

The role of martensite decomposition and β-stabilizer segregation to interfaces in Ti-6Al-4V with an initial dual-phase α+α' microstructure

View Full Paper
NPNina PfefferABA. BezoldJVJan Vollhüter

Key Points

  • This study aims to clarify the microstructural mechanisms responsible for strength enhancement in dual-phase Ti-6Al-4V through short-time annealing.
  • Comparison of microstructures in as-received, solution heat treated, and short-time annealed states
  • Utilization of advanced techniques like high-resolution scanning transmission electron microscopy and atom probe tomography
  • Mechanical assessment through tensile testing at different annealing durations
  • Short-time annealing at 570 °C for 180 s triggered transformation from α' to α+β phases
  • Chemical segregation of V and Fe to interfaces formed V-/Fe-enriched clusters
  • Microstructure evolved towards equilibrium after 3 hours, with stable α and β phase fractions

Abstract

The strength of dual-phase α+α' Ti-6Al-4V sheet material can be significantly enhanced through additional short-time annealing lasting only a few minutes, as shown in previous work and attributed to nano-scale microstructural changes within the martensitically transformed β-phase. However, the microstructural mechanisms remained unclear. In this study, the microstructures of the as-received state, the solution heat treated state with α+α' microstructure and additionally (short-time) annealed states were compared to provide deeper insight into these microstructural processes. Advanced high-resolution techniques, including high resolution scanning transmission electron microscopy, atom probe tomography and high-energy X-ray diffraction, were combined with tensile testing for mechanical assessment. Short-time annealing of metastable Ti-6Al-4V α+α' microstructures at 570 °C for 180 s triggered an α' → α+β transformation, comprising: (i) chemical changes, involving V- and Fe-segregation to interfaces, and the formation of V-/Fe-enriched clusters; and (ii) crystallographic decomposition, manifested by α' lattice relaxation and lattice parameter changes. With prolonged annealing, element partitioning and β precipitation progressed from the clusters and nuclei located along interfaces, accompanied by slight changes in the lattice parameters of both phases. After 3 h, the microstructure approached equilibrium, with stabilized α and β phase fractions and lattice parameters. The strengthening achieved by short-time annealing is attributed to suppression of reorientation-induced plasticity in prior α'-martensite and dislocation-cluster/precipitate/solute interactions. In summary, this work reveals microstructural evolution and processes during martensite decomposition in dual-phase Ti-6Al-4V, including β-stabilizer segregation to interfaces. Further, it discusses their role in strength enhancement, providing guidance for developing effective heat treatment and processing routes.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Pfeffer et al. (2026) studied this question.

synapsesocial.com/papers/69a91dedd6127c7a504c1390https://doi.org/10.1016/j.msea.2026.150024
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

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

  1. 1Property optimization through microstructural control in titanium and aluminum alloys1999 · 167 citations
  2. 2The lattice parameters of high purity alpha titanium; and the effects of oxygen and nitrogen on them1949 · 30 citations
  3. 3Elastic moduli and tensile and physical properties of heat-treated and quenched powder metallurgical Ti-6Al-4V alloy1991 · 75 citations
  4. 4Observations on the Lattice Parameters of the Alpha Solid Solution in the Titanium-Aluminum System1952 · 9 citations
  5. 5A strategy to improve the work-hardening behavior of Ti–6Al–4V parts produced by additive manufacturing2016 · 147 citations