APPLIED LASER, Volume. 43, Issue 12, 60(2023)
Research on Porous Materials of Low Elastic Modulus Based on Selective Laser Melting Process
[3] [3] SUN J, YANG Y, WANG D. Mechanical properties of a Ti6Al4V porous structure produced by selective laser melting [J]. Materials & Design, 2013, 49: 545-552.
[4] [4] LI X, LUO Y, WANG C. Preparation and characterization of porous Ti6Al4V/alginate hybrid implant by combination of electron beam melting and freeze-drying [J]. Materials Letters, 2012, 81: 23-26.
[5] [5] LI J, WU H, LIU H, et al. Surface and property characterization of selective laser-melted Ti-6Al-4V alloy after laser polishing [J]. Advanced Manufacturing Technology, 2023, 128: 703-714.
[6] [6] PALASH M, APURBA D, ARGHYA M, et al. Fabrication of Ti-6Al-4V porous scaffolds using selective laser melting (SLM) and mechanical compression test for biomedical applications [J]. Journal of The Institution of Engineers, 2022, 103: 181-190.
[7] [7] CHEN S, HUANG J, PAN C, et al. Microstructure and mechanical properties of open-cell porous Ti-6Al-4V fabricated by selective laser melting [J]. Journal of Alloys and Compounds, 2017, 713: 248-254.
[8] [8] LU J, ZHUO L. Additive manufacturing of titanium alloys via selective laser melting: Fabrication, microstructure, post-processing, performance and prospect [J]. International Journal of Refractory Metals and Hard Materials, 2023, 111: 106-110.
[9] [9] ANIL K, MAINAK B, AMAN S, et al. Selective laser melting of Ti6Al4V alloy: Process parameters, defects and post-treatments [J]. Journal of Manufacturing Processes, 2021, 64: 161-187.
[10] [10] WANG S, LIU L, LI K, et al. Pore functionally graded Ti6Al4V scaffolds for bone tissue engineering application[J]. Materials & Design, 2019, 168: 107643.
[11] [11] LIAO B, XIA R, LI W, et al. 3D-Printed Ti6Al4V scaffolds with graded triply periodic minimal surface structure for bone tissue engineering [J]. Journal of Materials Engineering and Performance, 2021, 30: 4993-5004.
[12] [12] LI X, WANG C, ZHANG W, et al. Fabrication and characterization of porous Ti6Al4V parts for biomedical applications using electron beam melting process [J]. Materials Letters, 2009, 63: 403-405.
[13] [13] MICHAELA F, DALIBOR V, JIRI K, et al. Promising characteristics of gradient porosity Ti-6Al-4V alloy prepared by SLM process [J]. Journal of the Mechanical Behavior of Biomedical Materials, 2017, 69: 368-376.
[23] [23] KLIMAS J, UKASZEWICZ A, SZOTA M, et al. Modification of the structure and properties of the titanium alloy Ti6Al4V in biomedical applications[J]. Archives of Metallurgy and Materials, 2015, 60(3): 2013-2018.
[26] [26] MOHAMMED M T, KHAN Z A, MANIVASAGAM G, et al. Influence of thermomechanical processing on biomechanical compatibility and electrochemical behavior of new near beta alloy, Ti-20.6Nb-13.6Zr-0.5V[J]. International Journal of Nanomedicine, 2015, 10(Suppl 1): 223-235.
[27] [27] YANG Y, HU L, HUANG J. Effect of microstructure and printed pores on the adiabatic shearing behavior of Ti6Al4V titanium alloy manufactured by selective electron beam melting [J]. Materials Characterization, 2023, 196: 112642.
Get Citation
Copy Citation Text
Tang En, Fang Yangming, Wang Kun, Liu Jingqi, Zhang Rui. Research on Porous Materials of Low Elastic Modulus Based on Selective Laser Melting Process[J]. APPLIED LASER, 2023, 43(12): 60
Received: May. 10, 2023
Accepted: --
Published Online: May. 23, 2024
The Author Email: