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Engineered ωiso phase enable deformation-induced mechanisms strength and plasticity synergy in a novel Ti-531 metastable β titanium alloy

  • Beijing Institute of Technology
  • Beijing Institute of Technology (Zhuhai)

科研成果: 期刊稿件文章同行评审

摘要

Metastable β-Ti alloys are known for their high strain hardening rates and excellent plasticity through the combined effects of transformation induced plasticity (TRIP) and twinning induced plasticity (TWIP) effects, yet their relatively low yield strength restrict structural applications. Improving yield strength without sacrificing ductility is thus a key challenge in these alloys. To address this long-standing strength-plasticity dilemma, we designed a novel metastable β-Ti alloy, Ti-5Mo-3Cr-1Zr (Ti-531), guided by d-electron theory, average electron-to-atom ratio (e/a‾) and atomic radius difference (Δr‾) criteria. By engineering nanoscale ωiso phase precipitations, a strategy is demonstrated to concurrently strengthen the yield response and preserve high ductility in the Ti-531 alloy. The results show that these ωiso particles substantially strengthen the alloy and activate a synergistic deformation-induced strengthening mechanism. This mechanism involves a sandwich-type composite twin/stress-induced ω (SIω) structures, interactions between twin/SIM (α”), and development of dislocation channels largely devoid of ωiso phase synergistically accommodate localized strain. These dislocation channels facilitate to accelerate dislocation accumulation, promote forest hardening and suppress the impeding effect of ωiso phase. As a result, the alloy aged at 423 K (A423) outperforms the hot-rolled solution-treated alloy (R1123) in yield strength (∼642 MPa, ∼28 % higher) with merely a slight (∼1.1 %) reduction in elongation, thus combining high strength with largely preserved ductility. This work introduces instability-control paradigm that harmonizes twin/ SIω/SIM-assisted deformation and dislocation channels strengthening to engineer high performance metastable β-Ti alloys.

源语言英语
期刊论文编号149806
期刊Materials Science and Engineering: A
954
DOI
出版状态已出版 - 2月 2026

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