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碳纳米管助力实现具有高浓度增强相的高性能钛的激光3D打印。

Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement.

作者信息

Gu Dongdong, Chen Hongyu, Dai Donghua, Ma Chenglong, Zhang Han, Lin Kaijie, Xi Lixia, Zhao Tong, Hong Chen, Gasser Andres, Poprawe Reinhart

机构信息

College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Yudao Street 29, Nanjing 210016, PR China.

Jiangsu Provincial Engineering Laboratory for Laser Additive Manufacturing of High-Performance Metallic Components, Nanjing University of Aeronautics and Astronautics, Yudao Street 29, Nanjing 210016, PR China.

出版信息

iScience. 2020 Aug 25;23(9):101498. doi: 10.1016/j.isci.2020.101498. eCollection 2020 Sep 25.

Abstract

Zero- to two-dimensional nanomaterials have been incorporated into metal-matrices to improve the strength of metals, but challengingly, high-volume-fraction nanomaterials are difficult to disperse uniformly in metal matrices, severely degrading the ductility of conventionally processed metals. Here, a considerably dense uniform dispersion of formed nanoscale lamellar TiC reinforcement (16.1 wt %) in Ti matrix is achieved through laser-tailored 3D printing and complete reaction of Ti powder with a small amount (1.0 wt %) of carbon nanotubes (CNTs). An enhanced tensile strength of 912 MPa and an outstanding fracture elongation of 16% are simultaneously achieved for laser-printed components, showing a maximum 350% improvement in "product of strength and elongation" compared with conventional Ti. nanoscale TiC reinforcement favors the formation of ultrafine equiaxed Ti grains and metallurgically coherent interface with minimal lattice misfit between TiC lamellae and Ti matrix. Our approach hopefully provides a feasible way to broaden structural applications of CNTs in load-bearing Ti-based engineering components via laser-tailored reorganization with Ti.

摘要

零维到二维的纳米材料已被引入金属基体中以提高金属强度,但具有挑战性的是,高体积分数的纳米材料难以在金属基体中均匀分散,这严重降低了传统加工金属的延展性。在此,通过激光定制的3D打印以及钛粉与少量(1.0 wt%)碳纳米管(CNT)的完全反应,在钛基体中实现了相当致密的纳米级层状TiC增强体(16.1 wt%)的均匀分散。激光打印部件同时实现了912 MPa的增强拉伸强度和16%的出色断裂伸长率,与传统钛相比,“强度与伸长率的乘积”提高了350%。纳米级TiC增强体有利于形成超细等轴钛晶粒以及TiC片层与钛基体之间晶格失配最小的冶金相干界面。我们的方法有望通过与钛进行激光定制重组,为拓宽碳纳米管在承重钛基工程部件中的结构应用提供一条可行途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/582c/7490543/e9ef405c0949/fx1.jpg

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