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Experimental investigation on kinetic behavior of the deformation-induced α→β transformation during hot working of Ti–6Al–2Zr–1Mo–1V alloy below the β-transus.

Authors :
Zhang, Qifei
Jin, Miao
Zhang, Yusen
Wang, Haoyu
Chen, Lei
Yang, Shuai
Guo, Baofeng
Source :
Materials Science & Engineering: A. May2022, Vol. 843, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

Hot compression test was performed on Ti–6Al–2Zr–1Mo–1V alloy below the β-transus (T β) with the temperature range of 940–970 °C. Microstructural evolution, especially on the equiaxed primary α phase (α p), was characterized by scanning electron microscope (SEM), electron backscatter diffraction (EBSD) and transmission electron microscope (TEM). The results showed that the α p could transform into β during hot deformation at α+β two-phase region, i.e., deformation-induced transformation of α→β (DIT). DIT, as an additional softening mechanism, caused the unusual stress response on the flow curves, which was reflected by the fact of the steady stress (σ st)<initial yield stress (σ 0.2). The fraction of transformed α p was influenced by various hot working parameters (such as temperature, strain and strain rate). Even complete dissolution of α p was present in some cases, indicating a premature T β during straining. The DIT is considered as a displacive nucleation and diffusion-controlled growth process. Its mechanism can currently be divided into two types: internal penetration of α p and α/β interface migration. The α p particles with higher favorable orientation preferentially undergo phase transformation. A kinetic model based on the transformed α p fraction (ω αp (t)) during DIT was developed by taking into account the thermal activation contribution (corresponding to heating duration) and mechanical driving force contribution (corresponding to deformation). The model was fitted to the ω αp (t) as a sigmoidal function of time (t) based on the classical Johnson–Mehl–Avrami (JMA) equation. Such a quantitative kinetic model for DIT can be used to accurately tailor the required balance between α p and β in Ti–6Al–2Zr–1Mo–1V alloy during hot working. • The effect of hot working processes on the deformation-induced α.→β transformation (DIT) of Ti–6Al–2Zr–1Mo–1V alloy is clarified. • The internal penetration of primary α phase (α p) and α/β interface migration are considered as two mechanism of DIT • The driving force of DIT on Ti–6Al–2Zr–1Mo–1V alloy is obtained. • A quantitative kinetic model for DIT is used to tailor the required balance of α p and β of titanium alloy during hot working. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09215093
Volume :
843
Database :
Academic Search Index
Journal :
Materials Science & Engineering: A
Publication Type :
Academic Journal
Accession number :
156550385
Full Text :
https://doi.org/10.1016/j.msea.2022.143110