Cargando…

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

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,...

Descripción completa

Detalles Bibliográficos
Autores principales: Gu, Dongdong, Chen, Hongyu, Dai, Donghua, Ma, Chenglong, Zhang, Han, Lin, Kaijie, Xi, Lixia, Zhao, Tong, Hong, Chen, Gasser, Andres, Poprawe, Reinhart
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7490543/
https://www.ncbi.nlm.nih.gov/pubmed/32916629
http://dx.doi.org/10.1016/j.isci.2020.101498
_version_ 1783582056087814144
author Gu, Dongdong
Chen, Hongyu
Dai, Donghua
Ma, Chenglong
Zhang, Han
Lin, Kaijie
Xi, Lixia
Zhao, Tong
Hong, Chen
Gasser, Andres
Poprawe, Reinhart
author_facet Gu, Dongdong
Chen, Hongyu
Dai, Donghua
Ma, Chenglong
Zhang, Han
Lin, Kaijie
Xi, Lixia
Zhao, Tong
Hong, Chen
Gasser, Andres
Poprawe, Reinhart
author_sort Gu, Dongdong
collection PubMed
description 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 in situ 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. In situ 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.
format Online
Article
Text
id pubmed-7490543
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-74905432020-09-21 Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement Gu, Dongdong Chen, Hongyu Dai, Donghua Ma, Chenglong Zhang, Han Lin, Kaijie Xi, Lixia Zhao, Tong Hong, Chen Gasser, Andres Poprawe, Reinhart iScience Article 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 in situ 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. In situ 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. Elsevier 2020-08-25 /pmc/articles/PMC7490543/ /pubmed/32916629 http://dx.doi.org/10.1016/j.isci.2020.101498 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Gu, Dongdong
Chen, Hongyu
Dai, Donghua
Ma, Chenglong
Zhang, Han
Lin, Kaijie
Xi, Lixia
Zhao, Tong
Hong, Chen
Gasser, Andres
Poprawe, Reinhart
Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement
title Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement
title_full Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement
title_fullStr Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement
title_full_unstemmed Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement
title_short Carbon Nanotubes Enabled Laser 3D Printing of High-Performance Titanium with Highly Concentrated Reinforcement
title_sort carbon nanotubes enabled laser 3d printing of high-performance titanium with highly concentrated reinforcement
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7490543/
https://www.ncbi.nlm.nih.gov/pubmed/32916629
http://dx.doi.org/10.1016/j.isci.2020.101498
work_keys_str_mv AT gudongdong carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT chenhongyu carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT daidonghua carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT machenglong carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT zhanghan carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT linkaijie carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT xilixia carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT zhaotong carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT hongchen carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT gasserandres carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement
AT poprawereinhart carbonnanotubesenabledlaser3dprintingofhighperformancetitaniumwithhighlyconcentratedreinforcement