Cryogenic temperature tensile properties of laser powder bed fused Ti-6Al-4V

IF 2.9 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materialia Pub Date : 2024-11-28 DOI:10.1016/j.mtla.2024.102307
Jayaraj Radhakrishnan , Gaurav Singh , Punit Kumar , Niraj Nayan , Upadrasta Ramamurty
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Abstract

Unnotched and notched tensile properties of Ti-6Al-4V (Ti64) alloy, additively manufactured using the laser powder bed fusion (LPBF) technique, at cryogenic temperatures of 90, 77 and 20 K were investigated. The LPBF process parameter combination was chosen such that the investigated alloy has not only a minimum in porosity, but also an equiaxed prior β microstructure, which predominantly contains acicular α/α’ lath structure in basket-weave morphology, that results in a high strength and ductility combination as well as insignificant mechanical anisotropy at room temperature (300 K). Tensile tests revealed that the yield (σy) and tensile (σu) strengths of LPBF Ti64 are superior while elongation to failure (ef) is comparable to those of the conventionally manufactured (CM) Ti64 down to 77 K, owing to the fine α/α’ lath microstructure in the former. While the progressive reduction of <a>-basal and prismatic dislocation slip activity with decreasing deformation temperature enables a steep rise in σy, the unnotched specimens fractured catastrophically without macroscopic yielding at 20 K. Detailed postmortem analyses revealed the absence of significant twinning-based deformation in LPBF Ti64, in stark contrast to the CM ones at cryogenic temperatures. Instead, deformation kink bands with varying sizes and misorientation were found to be increasingly active within the prior β grains. A large misorientation at the kink band boundary within the β grain leads to void nucleation followed by crack growth, which eventually results in brittle failure at 20 K. While relatively notch insensitive from 300 to 77 K, LPBF Ti64 was notch brittle at 20 K. These results highlight the importance of the unique hierarchical micro- and meso‑structural features of LPBF Ti64 on the tensile mechanical behavior, especially at cryogenic temperatures.

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激光粉末床熔融Ti-6Al-4V的低温拉伸性能
研究了激光粉末床熔接(LPBF)增材制备Ti-6Al-4V (Ti64)合金在90、77和20 K低温下的无缺口和缺口拉伸性能。选择LPBF工艺参数组合,使所研究的合金不仅具有最小的孔隙率,而且具有等轴的先验β组织,其中主要含有针状α/α '板条组织,呈篮织状;在室温(300 K)下,LPBF Ti64的屈服强度(σy)和抗拉强度(σu)均优于常规Ti64,而断裂伸长率(ef)与常规Ti64相当,低至77 K,这主要是由于LPBF Ti64具有良好的α/α′板条组织。随着变形温度的降低,基底位错和棱柱位错滑移活动逐渐降低,σy急剧上升,而在20k时,无缺口的试样在没有宏观屈服的情况下发生断裂。详细的尸检分析显示,在低温下,LPBF Ti64中没有明显的基于孪晶的变形,与CM形成鲜明对比。相反,在先前的β晶粒中发现不同尺寸和取向错误的变形扭结带越来越活跃。在β晶粒的扭结带边界处存在较大的取向错误,导致空穴形核和裂纹扩展,最终导致20k时的脆性破坏。在300 ~ 77 K范围内,LPBF Ti64对缺口不敏感,而在20 K范围内,LPBF Ti64对缺口不敏感。这些结果强调了LPBF Ti64独特的分层微观和细观结构特征对拉伸力学行为的重要性,特别是在低温下。
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来源期刊
Materialia
Materialia MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
6.40
自引率
2.90%
发文量
345
审稿时长
36 days
期刊介绍: Materialia is a multidisciplinary journal of materials science and engineering that publishes original peer-reviewed research articles. Articles in Materialia advance the understanding of the relationship between processing, structure, property, and function of materials. Materialia publishes full-length research articles, review articles, and letters (short communications). In addition to receiving direct submissions, Materialia also accepts transfers from Acta Materialia, Inc. partner journals. Materialia offers authors the choice to publish on an open access model (with author fee), or on a subscription model (with no author fee).
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