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铌添加对激光粉末床熔融制备的Ti6Al4V合金微观结构和力学性能的影响

Influence of Nb Addition on the Microstructure and Mechanical Properties of Laser Powder Bed Fusion-Fabricated Ti6Al4V Alloy.

作者信息

Zhang Bo, Wan Min, Gao Na, Jiang Hao, Chen Tuokuan, Zhao Peng, Liu Zhenzhen, Jiao Qingyuan, Lv Baoguo, Han Quanquan, Wang Xiebin

机构信息

Shandong Institute of Medical Device and Pharmaceutical Packaging Inspection, Jinan 250101, China.

School of Materials Science and Engineering, Shandong University, Jinan 250061, China.

出版信息

Materials (Basel). 2025 Apr 15;18(8):1803. doi: 10.3390/ma18081803.

Abstract

Additive manufacturing of Ti6Al4V alloys via laser powder bed fusion (L-PBF) has demonstrated superior tensile strength compared to conventional methods. However, challenges remain in enhancing ductility and tailoring mechanical properties for specific applications. In this work, we show a feasible method to regulate the mechanical properties of additively manufacturing Ti alloys. Ti6Al4V alloys with different Nb content (1, 3, and 10 wt.%) were fabricated through laser powder bed fusion (L-PBF) in situ alloying using the mixture of Ti6Al4V and Nb powders. The powder mixture shows good printability, and dense Ti6Al4V-xNb alloys are obtained. Although the distribution of Nb is highly heterogeneous, no solidification cracks or secondary intermetallics were detected in both the Nb-rich and Nb-lean regions. The microstructure is gradually refined with the increase in Nb addition, mainly due to the heterogeneous nucleation caused by the partially melted Nb particles. The L-PBF-fabricated T6Al4V-xNb alloys are mainly in α' martensite phase, even with the addition of 10 wt.% Nb, due to the low content of Nb solute in the matrix. The presence of β phase is suggested around the Nb particles, since a small region with graded Nb content is formed around the Nb particles. The ultimate tensile strength increases from 1050 to 1181 MPa with the addition of 3 wt.% Nb, and the total elongation increases slightly from 8.8% to 10.5%. With the addition of 10 wt.% Nb, the total elongation increases largely to 15.6%, while maintaining a high strength of 1135 MPa. Moreover, the elastic modulus decreases from 105 to 80 GPa with the increase in Nb content to 10 wt.%. The results of this work suggest that L-PBF in situ alloying is a promising approach to optimize the mechanical performance of Ti6Al4V alloys.

摘要

通过激光粉末床熔融(L-PBF)增材制造Ti6Al4V合金已显示出与传统方法相比具有卓越的拉伸强度。然而,在提高延展性以及针对特定应用定制机械性能方面仍存在挑战。在这项工作中,我们展示了一种调节增材制造钛合金机械性能的可行方法。通过使用Ti6Al4V和Nb粉末的混合物进行激光粉末床熔融(L-PBF)原位合金化,制备了具有不同Nb含量(1、3和10 wt.%)的Ti6Al4V合金。该粉末混合物显示出良好的可打印性,并获得了致密的Ti6Al4V-xNb合金。尽管Nb的分布高度不均匀,但在富Nb和贫Nb区域均未检测到凝固裂纹或二次金属间化合物。随着Nb添加量的增加,微观结构逐渐细化,这主要是由于部分熔化的Nb颗粒引起的异质形核。即使添加了10 wt.%的Nb,通过L-PBF制造的T6Al4V-xNb合金主要仍为α'马氏体相,这是由于基体中Nb溶质含量较低。由于在Nb颗粒周围形成了一个具有渐变Nb含量的小区域,因此推测在Nb颗粒周围存在β相。随着添加3 wt.%的Nb,极限抗拉强度从1050 MPa增加到1181 MPa,总伸长率从8.8%略有增加到10.5%。随着添加10 wt.%的Nb,总伸长率大幅增加到15.6%,同时保持1135 MPa的高强度。此外,随着Nb含量增加到10 wt.%,弹性模量从105 GPa降低到80 GPa。这项工作的结果表明,L-PBF原位合金化是优化Ti6Al4V合金机械性能的一种有前途的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/665d/12029091/886fa9d65b36/materials-18-01803-g001.jpg

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