Phase selection-oriented mechanical properties tailoring for β-type TiNbZrTaSi alloy fabricated by laser powder bed fusion

Xuan Luo , Tao Song , Feng Wang , Haizhou Lu , Limei Kang , Hongwei Ma , Dongdong Li , Annett Gebert , Chao Yang
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引用次数: 3

Abstract

The morphology and distribution of silicides in α/α+β type titanium alloys impress on their properties. Nevertheless, the types of silicide precipitates and their formation mechanisms remain unclear in β-type Ti–Nb–Zr–Ta alloys. In this study, we report the precipitation behavior of silicides formed upon aging treatment of a laser powder bed fusion (LPBF)-fabricated β-type Ti–34.5Nb–6.9Zr–4.9Ta–1.4Si (wt%, TNZTS) alloy. We further discuss their underlying formation mechanism and silicide selection-oriented mechanical properties tailoring for LPBF-fabricated TNZTS alloy. Two novel silicide precipitates were formed: a supersaturated Si–rich β–Ti matrix in the form of a network that can further transform into the (Ti, Zr)2Si (S2) phase with the increase of aging temperature; and a short, rod-like S2 precipitate adjacent to pre-existing dot-shaped S2. The former results from the aggregation of Si solute atoms towards to the dislocation walls/microbands and the subsequent precipitation reaction, while the latter arises from the considerable micro-strain around the phase boundary between the dot-shaped S2 and β-Ti owing to the large difference in their thermal expansion coefficients. The aging-treated TNZTS alloy exhibits a good combination of tensile strength (1083 ​± ​5 ​MPa) and fracture strain (5.6% ​± ​1.0%), which is attributed to precipitation strengthening, grain-boundary strengthening, and discontinuous intergranular silicide derived from phase selection. The obtained results provide a basis for the design and fabrication of biomedical Si-containing β-type Ti alloys with excellent mechanical properties.

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面向相位选择的激光粉末床熔合β型TiNbZrTaSi合金力学性能裁剪
α/α+β型钛合金中硅化物的形态和分布对其性能有重要影响。然而,在β型Ti–Nb–Zr–Ta合金中,硅化物沉淀物的类型及其形成机制仍不清楚。在本研究中,我们报道了激光粉末床聚变(LPBF)制造的β型Ti–34.5Nb–6.9Zr–4.9Ta–1.4Si(wt%,TNZTS)合金在时效处理过程中形成的硅化物的析出行为。我们进一步讨论了它们的潜在形成机制,以及为LPBF制备的TNZTS合金量身定制的硅化物选择导向的机械性能。形成了两种新型的硅化物沉淀物:一种过饱和的富硅β–Ti基体,其呈网络形式,随着时效温度的升高,可以进一步转变为(Ti,Zr)2Si(S2)相;以及与预先存在的点状S2相邻的短的棒状S2沉淀。前者是Si溶质原子向位错壁/微带聚集以及随后的沉淀反应的结果,而后者是由于点状S2和β-Ti之间的相边界附近的热膨胀系数差异较大而产生的相当大的微应变。经时效处理的TNZTS合金表现出良好的抗拉强度组合(1083​±​5​MPa)和断裂应变(5.6%​±​1.0%),这归因于沉淀强化、晶界强化和由相选择产生的不连续晶间硅化物。研究结果为设计和制备具有优异力学性能的生物医用含硅β型钛合金提供了依据。
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