Laser & Optoelectronics Progress, Volume. 55, Issue 1, 11403(2018)
Research Progress on Technology of Selective Laser Melting of Titanium and Titanium Alloys
[1] Leyens C, Peters M. Titanium and titanium alloys:Fundamentals and applications[M]. New York: John Wiley & Sons, 3(2003).
[5] Zhao Y Q, Chen Y N, Zhang X M et al[M]. Phase transformation and heat treatment of titanium alloys(2012).
[15] Yang Q Z, Wei Y P, Gao P et al[J]. Research progress of metal additive manufacturing technologies and related materials Materials Review, 2016, 107-111.
[26] Dang X A, Zhang X B, Yang L J et al. Researching forming property of titanium powder in selective laser melting[J]. Journal of Shaanxi University Science & Technology, 1, 68-73(2014).
[38] Gong H, Gu H, Zeng K et al. Melt pool characterization for selective laser melting of Ti-6Al-4V pre-alloyed powder[C]. Solid Freeform Fabrication Symposium, 256-267(2014).
[39] [39] Gong HJ, RafiK, Gu HF, et al. Analysis of defect generation in Ti-6Al-4V parts made using powder bed fusion additive manufacturing processes[J]. Additive Manufacturing, 2014, 1/2/3/4: 87- 98.
[43] Sato Y, Tsukamoto M, Yamashita Y. et al. Effect on beam profile of Ti alloy plate fabrication from powder by sputter-less selective laser melting[C]. SPIE, 10095, 100950Z(2017).
[47] Ye Z H. The personalized design and process research of selective laser melting manufacturing of Ti6Al4V tibial implant[D]. Guangzhou: South China University of Technology(2014).
[48] Wang X L. Study on process optimization and property of titanium alloy manufactured by selective laser melting[D]. Guangzhou: South China University of Technology(2016).
[50] Zhang S. Research on the forming processes and properties in selective laser melting of medical alloy powders[D]. Wuhan: Huang Zhong University of Science and Technology(2014).
[56] Simonelli M, Tse Y Y, Tuck C. Further understanding of Ti-6Al-4V selective laser melting using texture analysis. [C]// Proceedings of 23rd Annual International Solid Freeform Fabrication Symposium, 480-491(2012).
[80] Mohanty S, Hattel J H. Reducing residual stresses and deformations in selective laser melting through multilevel multiscale optimization of cellular scanning strategy[C]. SPIE, 9738, 97380Z(2016).
[91] Bolzoni L. Ruiz-Navas E M, Gordo E. Influence of HIP parameters on the microstructure and mechanical properties of elemental titanium and Ti-6Al-7Nb alloy[C]. European Powder Metallurgy(2012).
[111] Sing S L, Wang S, Agarwala S et al. Fabrication of titanium based biphasic scaffold using selective laser melting and collagen immersion[J]. International Journal of Bioprinting, 3, 1-7(2017).
[113] Pan C T, Lin C H, Huang Y S et al. Design of interbody fusion cages of Ti6Al4V with gradient porosity using a selective laser melting process for spinal fusion arthroplasty[J]. Journal of Laser Micro/Nanoengineering, 12, 34-44(2017).
Get Citation
Copy Citation Text
Li Junfeng, Wei Zhengying, Lu Bingheng. Research Progress on Technology of Selective Laser Melting of Titanium and Titanium Alloys[J]. Laser & Optoelectronics Progress, 2018, 55(1): 11403
Category: Lasers and Laser Optics
Received: Aug. 15, 2017
Accepted: --
Published Online: Sep. 10, 2018
The Author Email: Wei Zhengying (zywei@mail.xjt)