Three-dimensional printing of tungsten structures by directed energy deposition

被引:42
作者
Jeong, Wonjong [1 ]
Kwon, Young-Sam [2 ]
Kim, Dongsik [1 ]
机构
[1] POSTECH, Dept Mech Engn, Pohang 790784, South Korea
[2] CetaTech Inc, Osong, South Korea
基金
新加坡国家研究基金会;
关键词
3D; additive; density; hardness; laser; manufacturing; metal; powder; printing; tungsten; LASER METAL-DEPOSITION; STAINLESS-STEEL; MICROSTRUCTURE; ALLOYS; TECHNOLOGY; POWDER;
D O I
10.1080/10426914.2019.1594253
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Although three-dimensional (3D) printing of tungsten parts by Powder Bed Fusion (PBF) has been demonstrated by multiple research groups, a directed energy deposition (DED) process for fabricating pure tungsten structures has never been reported. This work reports successful fabrication of pure tungsten structures by DED, revealing the required process conditions. The effect of laser power, scan speed, powder feed rate and carrier gas velocity on the stability and properties of the structures is first analyzed, based on which the proper process condition for effective 3D printing of tungsten parts is proposed. Fabrication of a rectangular tube of 110 mm in height is demonstrated using an in-house DED printing system. Analyses of the fabricated samples show that the density and the hardness can be as high as 18.9 g/cm(3) (98.4% of the theoretical value) and 3.9 GPa, respectively. The results indicate that the optimal condition for 3D printing of tungsten is 400 similar to 530 J/mm(2) in terms of specific energy and that high-speed or high-mass injection of powder can induce waviness on the surface. This work suggests that DED can be a promising alternative to produce pure tungsten parts in various applications.
引用
收藏
页码:986 / 992
页数:7
相关论文
共 37 条
[1]   Laser metal deposition of multi-track walls of 308LSi stainless steel [J].
Abioye, T. E. ;
Medrano-Tellez, A. ;
Farayibi, P. K. ;
Oke, P. K. .
MATERIALS AND MANUFACTURING PROCESSES, 2017, 32 (14) :1660-1666
[2]   Rapid additive manufacturing of MR compatible multipinhole collimators with selective laser melting of tungsten powder [J].
Deprez, Karel ;
Vandenberghe, Stefaan ;
Van Audenhaege, Karen ;
Van Vaerenbergh, Jonas ;
Van Holen, Roel .
MEDICAL PHYSICS, 2013, 40 (01)
[3]   Laser Deposition of Ti-6Al-4V Wire with WC Powder for Functionally Graded Components [J].
Farayibi, P. K. ;
Folkes, J. A. ;
Clare, A. T. .
MATERIALS AND MANUFACTURING PROCESSES, 2013, 28 (05) :514-518
[4]  
Germain F. S., 1962, JOM, V14, P421, DOI [10.1007/BF03378159, DOI 10.1007/BF03378159]
[5]   Effect of Laser Power on Metallurgical, Mechanical and Tribological Characteristics of Hardfaced Surfaces of Nickel-Based Alloy [J].
Gnanasekaran S. ;
Padmanaban G. ;
Balasubramanian V. .
Lasers in Manufacturing and Materials Processing, 2017, 4 (4) :178-192
[6]   Laser additive manufacturing of metallic components: materials, processes and mechanisms [J].
Gu, D. D. ;
Meiners, W. ;
Wissenbach, K. ;
Poprawe, R. .
INTERNATIONAL MATERIALS REVIEWS, 2012, 57 (03) :133-164
[7]   Additive manufacturing: Technology, applications and research needs [J].
Guo N. ;
Leu M.C. .
Frontiers of Mechanical Engineering, 2013, 8 (3) :215-243
[8]  
Hedges M., 2006, P NATO AFVT 139 M CO
[9]   In situ oxide dispersion strengthened tungsten alloys with high compressive strength and high strain-to-failure [J].
Huang, Lin ;
Jiang, Lin ;
Topping, Troy D. ;
Dai, Chen ;
Wang, Xin ;
Carpenter, Ryan ;
Haines, Christopher ;
Schoenung, Julie M. .
ACTA MATERIALIA, 2017, 122 :19-31
[10]   Selective laser melting of tungsten and tungsten alloys [J].
Ivekovic, Aljaz ;
Omidvari, Neda ;
Vrancken, Bey ;
Lietaert, Karel ;
Thijs, Lore ;
Vanmeensel, Kim ;
Vleugels, Jef ;
Kruth, Jean-Pierre .
INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2018, 72 :27-32