TY - JOUR
T1 - Oxygen interstitials mediated strength-ductility enhancement by triggering multiple stress-induced α" twins in metastable β-Ti alloys
AU - Chen, Nana
AU - Zhu, Mingxiang
AU - Xie, Sisi
AU - Qiang, Fengming
AU - Wang, Guodong
AU - Li, Jinshan
AU - Kou, Hongchao
N1 - Publisher Copyright:
© 2025 The Authors.
PY - 2025/5/1
Y1 - 2025/5/1
N2 - The current investigation presents a novel approach for designing strong and ductile metastable β-Ti alloys by coupling oxygen interstitial strengthening with transformation-induced plasticity effect (TRIP). The influence of oxygen on mechanical behavior responses, stress-induced α" martensitic phase transformation (SIM α"), SIM α" twinning and facture mechanisms were systematically investigated using XRD, SEM, FIB-TEM and theoretical calculations. The results indicate that a complex hierarchical microstructure was obtained after deformation, due to the activation of SIM α" with multiple variants and twins. Notably, in addition to {130}<310>α", {011}<0–11>α", and {111}α" type I twinning, a novel {021}α" type I twinning is reported for the first time to operate during the plastic deformation of oxygen-doped β-Ti alloys. The formation mechanism of {021}α" type I twinning was further rationalized by considering both shear and atomic shuffle. The results suggest that the most plausible mechanisms to form {021}α" twins involve a shear of 0.3959 and atomic shuffle through mechanisms of ΔIa: 0.6044 Å and ΔIc: 1.9346 Å. Oxygen atoms not only promote SIM α" twinning but also inhibit extensive SIM α" growth. The synergistic improvement in strength, ductility and work hardening of the as-designed Ti–7Mo–3Cr–3Nb–3Al-0.23O (wt.%) alloy, was attributed to the coupling of oxygen interstitial strengthening, SIM α" transformation, SIM α" twinning-induced TRIP effects, and oxygen-induced strengthening of grain boundaries and twin boundaries.
AB - The current investigation presents a novel approach for designing strong and ductile metastable β-Ti alloys by coupling oxygen interstitial strengthening with transformation-induced plasticity effect (TRIP). The influence of oxygen on mechanical behavior responses, stress-induced α" martensitic phase transformation (SIM α"), SIM α" twinning and facture mechanisms were systematically investigated using XRD, SEM, FIB-TEM and theoretical calculations. The results indicate that a complex hierarchical microstructure was obtained after deformation, due to the activation of SIM α" with multiple variants and twins. Notably, in addition to {130}<310>α", {011}<0–11>α", and {111}α" type I twinning, a novel {021}α" type I twinning is reported for the first time to operate during the plastic deformation of oxygen-doped β-Ti alloys. The formation mechanism of {021}α" type I twinning was further rationalized by considering both shear and atomic shuffle. The results suggest that the most plausible mechanisms to form {021}α" twins involve a shear of 0.3959 and atomic shuffle through mechanisms of ΔIa: 0.6044 Å and ΔIc: 1.9346 Å. Oxygen atoms not only promote SIM α" twinning but also inhibit extensive SIM α" growth. The synergistic improvement in strength, ductility and work hardening of the as-designed Ti–7Mo–3Cr–3Nb–3Al-0.23O (wt.%) alloy, was attributed to the coupling of oxygen interstitial strengthening, SIM α" transformation, SIM α" twinning-induced TRIP effects, and oxygen-induced strengthening of grain boundaries and twin boundaries.
KW - Metastable β titanium alloy
KW - Oxygen interstitial strengthening
KW - Strengthening-toughening strategy
KW - TRIP effect
KW - {021} type I martensitic twinning
UR - https://www.scopus.com/pages/publications/105025459574
U2 - 10.1016/j.jmrt.2025.05.040
DO - 10.1016/j.jmrt.2025.05.040
M3 - 文章
AN - SCOPUS:105025459574
SN - 2238-7854
VL - 36
SP - 8745
EP - 8756
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
ER -