Additive manufacturing of porous metals using laser melting of Ti6AI4V powder with a foaming agent

被引:17
|
作者
Shim, Do-Sik [1 ]
Seo, Ja-Ye [2 ,3 ]
Yoon, Hi-Seak [2 ]
Lee, Ki-Yong [3 ]
Oh, Wook-Jin [1 ]
机构
[1] Korea Maritime & Ocean Univ, Dept Mech Engn, 727 Taejong Ro, Busan 49112, South Korea
[2] Chonnam Natl Univ, Dept Mech Engn, 77 Yongbong Ro, Gwangju 61186, South Korea
[3] Korea Inst Ind Technol KITECH, Smart Mfg Proc Grp, Gwangju 500460, South Korea
来源
MATERIALS RESEARCH EXPRESS | 2018年 / 5卷 / 08期
基金
新加坡国家研究基金会;
关键词
direct energy deposition; foaming agent; porous material; compression test; GAS-RELEASE; TITANIUM;
D O I
10.1088/2053-1591/aad117
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Recent years have seen researchers paying attention to the fabrication of porous structures by using additive manufacturing techniques suitable for the production of small batches. This paper focuses on the fabrication process and the compressive characteristics of a porous metal manufactured using the direct energy deposition (DED) process, which is a 3D printing technology for metals. Materials with structures containing internal pores were manufactured by spraying a mixture consisting of Ti6Al4V powder and a foaming agent (Na2CO3) onto a Ti6Al4V substrate, and subsequently fused with the substrate using a high-power laser beam. The ensuing molten pool undergoes rapid solidification, resulting in the formation of a metal layer. Before the molten metal solidifies, the carbon dioxide gas generated from Na2CO3 created pores inside the deposited layer. In this study, pored structures fabricated under various conditions were analyzed and compared from the viewpoint of compressive behavior. The results showed that the densities of the layered porous structures could be controlled by varying process parameters such as the laser power, scanning speed, powder feed rate, and mix ratio of the foaming agent. The most dominant parameters to obtain a pored structure were the amount of foaming agent and powder feed rate. The compression tests revealed that the porous materials manufactured using DED collapsed due to fracturing of the internal porous structures. After these structures fractured, the materials experienced densification, followed by crumbling. In addition, decreasing the laser power and scanning speed caused the compressive strength to decrease due to the high number of internal pores. Furthermore, before finally fracturing, the compressive strain decreased for specimens with increased porosity. The compression tests proved that the porous structure was able to effectively absorb compression loads.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Fabrication of porous metals layered by laser-assisted melting of sprayed Ti6Al4V powder and foaming agent mixture
    Shim, Do-Sik
    Seo, Ja-Ye
    [J]. MATERIALS LETTERS, 2018, 219 : 243 - 246
  • [2] Powder injection molding of Ti6AI4V alloy
    Qu, Xuanhui
    Guo, Shibo
    Tang, Chunfeng
    Qin, Mingli
    He, Xinbo
    Islam, Syed Humail
    [J]. THERMEC 2006, PTS 1-5, 2007, 539-543 : 2639 - +
  • [3] EBW and LBW of Additive Manufactured Ti6AI4V Products
    Tavlovich, B.
    Shirizly, A.
    Katz, R.
    [J]. WELDING JOURNAL, 2018, 97 (06) : 179S - 190S
  • [4] CHARACTERIZATION OF Ti-6Al-4V POWDER IN ELECTRON BEAM MELTING ADDITIVE MANUFACTURING
    Gong, Xibing
    Lydon, James
    Cooper, Kenneth
    Chou, Kevin
    [J]. INTERNATIONAL JOURNAL OF POWDER METALLURGY, 2015, 51 (01): : 25 - 34
  • [5] Surface texturing of Ti6AI4V alloy using femtosecond laser for superior antibacterial performance
    Shaikh, Shazia
    Kedia, Sunita
    Singh, Deepti
    Subramanian, Mahesh
    Sinha, Sucharita
    [J]. JOURNAL OF LASER APPLICATIONS, 2019, 31 (02)
  • [6] Fabrication of customized Ti6AI4V heterogeneous scaffolds with selective laser melting: Optimization of the architecture for orthopedic implant applications
    Pei, Xuan
    Wu, Lina
    Lei, Haoyuan
    Zhou, Changchun
    Fan, Hongyuan
    Li, Zhengyong
    Zhang, Boqing
    Sun, Huan
    Gui, Xingyu
    Jiang, Qing
    Fan, Yujiang
    Zhang, Xingdong
    [J]. Acta Biomaterialia, 2021, 126 : 485 - 495
  • [7] Fabrication of customized Ti6AI4V heterogeneous scaffolds with selective laser melting: Optimization of the architecture for orthopedic implant applications
    Pei, Xuan
    Wu, Lina
    Lei, Haoyuan
    Zhou, Changchun
    Fan, Hongyuan
    Li, Zhengyong
    Zhang, Boqing
    Sun, Huan
    Gui, Xingyu
    Jiang, Qing
    Fan, Yujiang
    Zhang, Xingdong
    [J]. ACTA BIOMATERIALIA, 2021, 126 : 485 - 495
  • [8] Preparation method and underlying mechanism of MWCNTs/Ti6Al4V nanocomposite powder for selective laser melting additive manufacturing
    Zhuang, Jie
    Gu, Dongdong
    Xi, Lixia
    Lin, Kaijie
    Fang, Yamei
    Wang, Rui
    [J]. POWDER TECHNOLOGY, 2020, 368 : 59 - 69
  • [9] Scanning strategy optimization for the selective laser melting additive manufacturing of Ti6Al4V
    Jia, Yun
    Zeng, Chao
    Xue, Jiutian
    [J]. ENGINEERING RESEARCH EXPRESS, 2023, 5 (01):
  • [10] Electrochemical study of growth behaviour of plasma electrolytic oxidation coating on Ti6AI4V: Effects of the additive
    Zhang, X. L.
    Jiang, Zh. H.
    Yao, Zh. P.
    Wu, Zh. D.
    [J]. CORROSION SCIENCE, 2010, 52 (10) : 3465 - 3473