Microstructure development and strengthening behaviour in hot-extruded Ti-Mo alloys with exceptional strength-ductility balance

IF 5.8 2区 材料科学 Q2 CHEMISTRY, PHYSICAL Journal of Alloys and Compounds Pub Date : 2024-10-22 DOI:10.1016/j.jallcom.2024.177195
Jeff Huang, Abdollah Bahador, Katsuyoshi Kondoh
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Abstract

A series of strong and ductile Ti-Mo alloys containing 2.5, 5, 7.5 and 10 wt.% Mo was experimentally investigated by a two-stage blended-elemental powder metallurgy process. This process consisted of a spark plasma sintering stage for powder-consolidation and in-situ-homogenisation, and a hot extrusion stage for densification and microstructure enhancement. Microstructures in the extruded alloys changed from α dominant to β dominant with molybdenum addition. Simultaneously, a grain refinement effect was observed due to suppressed α precipitation and increase β retention. A significant strengthening effect was observed with molybdenum addition. In comparison with similarly processed commercially pure titanium, Ti-10Mo exhibited a yield strength improvement of 290% to 1382.8 MPa, and an ultimate tensile strength improvement of 239% to 1496.5 MPa. Meanwhile, Ti-5Mo exhibited a yield strength improvement of 211% (1007.9 MPa) without any substantial reduction in ductility, resulting in an exceptional tensile toughness of 361.3 MJ.m-3. A quantitative analysis of strengthening mechanisms reveals considerable strengthening effects from solid solution strengthening, dislocation strengthening, and grain refinement effects. These factors arise from the novel multi-modal microstructures formed by thermomechanical processing at super-transus temperatures. The newly achieved balance of strength and ductility appears to be unrivalled amongst all previously reported binary Ti-Mo alloys.

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热挤压钛-钼合金的微观结构发展和强化行为,具有优异的强度-电导率平衡性
通过两阶段混合元素粉末冶金工艺,对一系列含 2.5、5、7.5 和 10 wt.% Mo 的高强度韧性钛钼合金进行了实验研究。该工艺包括用于粉末凝固和原位均质化的火花等离子烧结阶段,以及用于致密化和微观结构强化的热挤压阶段。添加钼后,挤压合金的微观结构从以 α 为主转变为以β 为主。同时,由于α析出受到抑制,β保留增加,因此观察到晶粒细化效应。添加钼后,还观察到了明显的强化效果。与经过类似处理的商业纯钛相比,Ti-10Mo 的屈服强度提高了 290%,达到 1382.8 兆帕,极限抗拉强度提高了 239%,达到 1496.5 兆帕。与此同时,Ti-5Mo 的屈服强度提高了 211%(1007.9 兆帕),而延展性却没有大幅降低,从而产生了 361.3 MJ.m-3 的超常拉伸韧性。对强化机制的定量分析显示,固溶强化、位错强化和晶粒细化效应都产生了相当大的强化效果。这些因素来自于在超跨度温度下通过热机械加工形成的新型多模态微结构。在以前报道的所有二元钛钼合金中,新近实现的强度和延展性平衡似乎是无与伦比的。
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来源期刊
Journal of Alloys and Compounds
Journal of Alloys and Compounds 工程技术-材料科学:综合
CiteScore
11.10
自引率
14.50%
发文量
5146
审稿时长
67 days
期刊介绍: The Journal of Alloys and Compounds is intended to serve as an international medium for the publication of work on solid materials comprising compounds as well as alloys. Its great strength lies in the diversity of discipline which it encompasses, drawing together results from materials science, solid-state chemistry and physics.
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