Enhancing strength-ductility synergy in metastable β-Ti alloys through β-subgrains-mediated hierarchical α-precipitation

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yujie Xing, Dingxuan Zhao, Jinwen Lei, Youchuan Mao, Zehua Zheng, Wei Chen, Jinyu Zhang, Xianghong Liu, Jun Sun
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Abstract

Titanium alloys can achieve ultrahigh strength through precipitation hardening of secondary α-phase (αs) from β-matrix but often compromise ductility due to the conventional strength-ductility trade-off. In this study, a new strategy based on β-subgrains-mediated hierarchical α-precipitation is devised to balance the conflict in Ti-6Al-2Mo-4Cr-2Fe (wt.%) alloy through a unique combination of hot rolling, short-term solid solution, and aging treatment, i.e., RSST+A. Tensile testing reveals that the RSST+A samples exhibit ultrahigh strength of ∼1581 MPa and decent ductility of ∼8.4%, surpassing ∼1060 MPa and ∼2.7% of the corresponding RSST counterparts without final aging treatment. This remarkable strengthening and counterintuitive ductilizing is attributed to the architecting of β-subgrains-mediated hierarchical α-precipitates as a result of our specific processing approach. The designed short-term solution introduces abundant β subgrains that are transformed from the retained intensive dislocations during hot rolling. The β subgrain boundaries subsequently promote a dramatic precipitation of α allotriomorphs (αGB) and Widmanstätten side-plates (αWGB), which effectively subdivides β grains into numerous tiny independent deformation units. Consequently, plastic strain is uniformly partitioned into a large number of small aged β subgrains during tension, which strongly impedes strain localization that would typically occur across multiple β subgrains in the fashion of long straight slip bands in the case of the RSST samples. Furthermore, the hierarchical α structure also postpones uncontrollable cracking even when structural damage occurs at the last stage of straining. These findings demonstrate that appropriately manipulating microstructure through elaborately designing processing routes enables unexpectedly ductilizing high-strength titanium alloys in the precipitation-hardening state.

Abstract Image

通过β-亚晶粒介导的分层α-沉淀提高可蜕变β-钛合金的强度-电导率协同效应
钛合金可以通过从β基体中析出次生α相(αs)实现超高强度,但由于传统的强度-韧性权衡,钛合金的韧性往往会大打折扣。在本研究中,通过热轧、短期固溶和时效处理(即 RSST+A)的独特组合,设计了一种基于 β 亚晶粒介导的分层 α 沉淀的新策略,以平衡 Ti-6Al-2Mo-4Cr-2Fe (wt.%) 合金中的冲突。拉伸测试表明,RSST+A 样品表现出 ∼1581 兆帕的超高强度和 ∼8.4% 的良好延展性,超过了未经最终时效处理的相应 RSST 样品的 ∼1060 兆帕和∼2.7%。这种显着的强化和反直觉的延展性归功于我们的特殊加工方法所产生的由β-亚晶粒介导的分层α-沉淀物结构。设计的短期解决方案引入了大量的 β 亚晶粒,它们是在热轧过程中由保留的密集位错转化而来的。随后,β 亚晶粒边界促进了 α 同素异形体 (αGB) 和 Widmanstätten 侧板 (αWGB)的急剧析出,从而有效地将β 晶粒细分为无数微小的独立变形单元。因此,在拉伸过程中,塑性应变被均匀地分配到大量细小的老化 β 子晶粒中,这极大地阻碍了应变局部化,而在 RSST 样品中,应变局部化通常会在多个 β 子晶粒中以长直滑移带的方式出现。此外,即使在拉伸的最后阶段出现结构破坏,分层 α 结构也会推迟不可控制的开裂。这些研究结果表明,通过精心设计加工路线来适当控制微观结构,可以出人意料地使沉淀硬化状态下的高强度钛合金具有延展性。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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