激光沉积Ti65钛合金裂纹起裂机理研究

IF 0.9 4区 材料科学 Q4 METALLURGY & METALLURGICAL ENGINEERING
Chang-fu Li, Jiang-tao Zhao, De-zhi Wang, Xiao-dan Li, Yu-hang Ren, Guang Yang
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引用次数: 0

摘要

为了以更低的成本和更短的交货时间生产复杂的Ti65合金结构件,采用激光沉积制造(LDM)方法制备了样品。比较了2 kW(低功率)和5 kW(高功率)激光条件下试样的显微组织和力学性能。在高功率下制备的样品具有较好的拉伸强度和延展性,而低功率样品则表现出更明显的开裂倾向。这种开裂行为归因于Ti65合金独特的化学成分和特定的激光功率设置,这决定了沉积时的微观结构,从而决定了其机械性能。在沉积态Ti65合金中,硅化物沿α/β界面和β相析出,在低功率样品中观察到的硅化物更大、数量更多。在LDM过程中,β稳定元素(W、Zr、Ta和Nb)倾向于在这些硅化物中富集,在低功率样品中富集程度更高,从而导致过量硅化物的形成。这增加了硅化物的析出,加上α和β相中β稳定元素的浓度降低,降低了低功率样品的塑性和强度。相反,高激光功率加速了硅化物的溶解,增强了β稳定元素在α和β相中的固溶体,从而提高了成形性能和室温拉伸性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Crack Initiation Mechanism of Ti65 Titanium Alloy Fabricated by Laser Deposition Manufacturing

Crack Initiation Mechanism of Ti65 Titanium Alloy Fabricated by Laser Deposition Manufacturing

In order to produce complex Ti65 alloy structural parts at reduced cost and shorter lead times, samples were fabricated using laser deposition manufacturing (LDM). The microstructure and mechanical properties of specimens produced under 2 kW (low power) and 5 kW (high power) laser settings were compared. Samples fabricated at higher power exhibited better tensile strength and ductility, whereas low-power samples showed a more pronounced tendency to crack. This cracking behavior is attributed to the distinctive chemical composition of Ti65 alloy and the specific laser power settings, which govern the as-deposited microstructure and, consequently, its mechanical properties. In the as-deposited Ti65 alloy, silicides precipitated along α/β interfaces and within the β phase, with larger and more numerous silicides observed in low-power samples. During the LDM process, β-stabilizing elements (W, Zr, Ta, and Nb) tended to concentrate in these silicides, with greater enrichment in the low-power samples, thus causing excessive silicide formation. This increased silicide precipitation, combined with a lower concentration of β-stabilizing elements in the α and β phases, reduced both ductility and strength in the low-power samples. In contrast, high laser power accelerated the dissolution of silicides and enhanced the β-stabilizing elements’ solid solution in the α and β phases, resulting in better formability and improved room-temperature tensile properties.

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来源期刊
Russian Journal of Non-Ferrous Metals
Russian Journal of Non-Ferrous Metals METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
1.90
自引率
12.50%
发文量
59
审稿时长
3 months
期刊介绍: Russian Journal of Non-Ferrous Metals is a journal the main goal of which is to achieve new knowledge in the following topics: extraction metallurgy, hydro- and pirometallurgy, casting, plastic deformation, metallography and heat treatment, powder metallurgy and composites, self-propagating high-temperature synthesis, surface engineering and advanced protected coatings, environments, and energy capacity in non-ferrous metallurgy.
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