TY - JOUR
T1 - Metastability engineering for TWIP-dominated plasticity with localized α” martensite activity in ω-strengthened metastable β Ti-6311 alloy
AU - Abro, Irfan Ali
AU - Yang, Lin
AU - Fan, Qunbo
AU - Mustafa, Kamal
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/9
Y1 - 2026/9
N2 - In metastable β titanium alloys, the primary deformation behavior is governed by the stability of the β phase, which controls the activation of dislocation slip, twinning-induced plasticity (TWIP), and transformation-induced plasticity (TRIP). In this study, a novel metastable β titanium alloy with a nominal composition of Ti-6Mo-3Cr-1Zr-1Fe (Ti-6311) was designed using d-electron theory, average electron-to-atom ratio (e/a‾) and atomic radius difference (Δr‾) criteria to achieve controlled β phase metastability near the β/(β+ ω) dislocation slip boundary, enabling a TWIP-dominated deformation response. Short-time low-temperature aging (STLTA) was employed to introduce nano-precipitations of ωiso phase, which act as strong pinning sites for dislocations, thereby enhancing precipitation strengthening. The results indicate that plastic deformation proceeds through the sequential activation of multiple mechanisms, with TWIP being the primary deformation mode, while sporadic twin-interface-assisted α” martensite and dislocation slip provide limited auxiliary strain accommodation. The early activation of {332}<113‾> twins, along with their interactions with grain boundaries (GBs) and twin boundaries (TBs), facilitates dislocation accumulation and induces significant strain hardening. Continued deformation leads to the formation of secondary {332}<113‾> twins inside primary twins, together with sporadic twin-interface-assisted α” martensite and the gradual consumption of ωiso phase, resulting in ωiso-depleted regions. The synergistic interactions between the ωiso phase, twin domains, and α” martensite enhances the capacity for dislocation accumulation and storage. Consequently, the alloy aged at 423K (AG423) achieves a yield strength of 680 MPa, a 19.29% improvement compared with the water quenched (WQ) alloy (570 MPa), while maintaining a total elongation of 31.9%, thus preserving its plasticity. This work provides a viable alloy design and aging route for metastable β-Ti alloys, where tuning β phase stability and ωiso strengthening jointly control deformation and mechanical performance.
AB - In metastable β titanium alloys, the primary deformation behavior is governed by the stability of the β phase, which controls the activation of dislocation slip, twinning-induced plasticity (TWIP), and transformation-induced plasticity (TRIP). In this study, a novel metastable β titanium alloy with a nominal composition of Ti-6Mo-3Cr-1Zr-1Fe (Ti-6311) was designed using d-electron theory, average electron-to-atom ratio (e/a‾) and atomic radius difference (Δr‾) criteria to achieve controlled β phase metastability near the β/(β+ ω) dislocation slip boundary, enabling a TWIP-dominated deformation response. Short-time low-temperature aging (STLTA) was employed to introduce nano-precipitations of ωiso phase, which act as strong pinning sites for dislocations, thereby enhancing precipitation strengthening. The results indicate that plastic deformation proceeds through the sequential activation of multiple mechanisms, with TWIP being the primary deformation mode, while sporadic twin-interface-assisted α” martensite and dislocation slip provide limited auxiliary strain accommodation. The early activation of {332}<113‾> twins, along with their interactions with grain boundaries (GBs) and twin boundaries (TBs), facilitates dislocation accumulation and induces significant strain hardening. Continued deformation leads to the formation of secondary {332}<113‾> twins inside primary twins, together with sporadic twin-interface-assisted α” martensite and the gradual consumption of ωiso phase, resulting in ωiso-depleted regions. The synergistic interactions between the ωiso phase, twin domains, and α” martensite enhances the capacity for dislocation accumulation and storage. Consequently, the alloy aged at 423K (AG423) achieves a yield strength of 680 MPa, a 19.29% improvement compared with the water quenched (WQ) alloy (570 MPa), while maintaining a total elongation of 31.9%, thus preserving its plasticity. This work provides a viable alloy design and aging route for metastable β-Ti alloys, where tuning β phase stability and ωiso strengthening jointly control deformation and mechanical performance.
KW - Deformation behavior
KW - Dislocations
KW - Twinning-induced plasticity
KW - ω phase
KW - ω-depleted channels
UR - https://www.scopus.com/pages/publications/105040220288
U2 - 10.1016/j.msea.2026.150510
DO - 10.1016/j.msea.2026.150510
M3 - Article
AN - SCOPUS:105040220288
SN - 0921-5093
VL - 971
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
M1 - 150510
ER -