Tool Wear Analysis in 3D Manufactured Ti6Al4V
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32807
Tool Wear Analysis in 3D Manufactured Ti6Al4V

Authors: David Downey

Abstract:

With the introduction of additive manufacturing (3D printing) to produce titanium (Ti6Al4V) components in the medical, aerospace and automotive industries, intricate geometries can be produced with virtually complete design freedom. However, the consideration of microstructural anisotropy resulting from the additive manufacturing process becomes necessary due to this design flexibility and the need to print a geometric shape that can consist of numerous angles, radii, and swept surfaces. A femoral knee implant serves as an example of a 3D-printed near-net-shaped product. The mechanical properties of the printed components, and consequently, their machinability, are affected by microstructural anisotropy. Currently, finish-machining operations performed on titanium printed parts using selective laser melting (SLM) utilize the same cutting tools employed for processing wrought titanium components. Cutting forces for components manufactured through SLM can be up to 70% higher than those for their wrought counterparts made of Ti6Al4V. Moreover, temperatures at the cutting interface of 3D printed material can surpass those of wrought titanium, leading to significant tool wear. Although the criteria for tool wear may be similar for both 3D printed and wrought materials, the rate of wear during the machining process may differ. The impact of these issues on the choice of cutting tool material and tool lifetimes will be discussed.

Keywords: Additive manufacturing, build orientation, microstructural anisotropy, printed titanium Ti6Al4V, tool wear.

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References:


[1] Al-Rubaie, K.S., Melotti, S., Rabelo, A., Paiva, J.M., Elbestawi, M.A., and Veldhuis, S.C. (2020) ‘Machinability of SLM-produced Ti6Al4V titanium alloy Frazier, W.E. (2014).
[2] Basak, A. and Das, S. (2016) “Epitaxy and microstructure evolution in metal additive manufacturing,” Annual Review of Materials Research, 46(1), pp. 125–149. Available at: https://doi.org/10.1146/annurev-matsci-070115-031728.
[3] Dang, J., Liu, G., Chen, Y., An, Q., Ming, W., and Chen, M. (2019) ‘Experimental investigation on machinability of DMLS Ti6Al4V under dry drilling process’, Materials and manufacturing processes, 34(7), 749–758, available: https://doi.org/10.1080/10426914.2019.1594254.
[4] Frazier, W.E. (2014) “Metal Additive Manufacturing: A Review,” Journal of Materials Engineering and Performance, 23(6), pp. 1917–1928. Available at: https://doi.org/10.1007/s11665-014-0958-z.
[5] Guo, P., Zou, B., Huang, C., and Gao, H. (2017) ‘Study on microstructure, mechanical properties and machinability of efficiently additive manufactured AISI 316L stainless steel by high-power direct laser deposition’, Journal of materials processing technology, 240, 12–22, available: https://doi.org/10.1016/j.jmatprotec.2016.09.005.
[6] ISO/ASTM 52900:2015(E),
[7] ISO 20160/ “Implants for surgery. metallic materials. classification of microstructures for alpha+beta titanium alloy bars” (no date). Available at: https://doi.org/10.3403/30027686.
[8] Li, G., Rahman Rashid, R., Ding, S., Sun, S., Palanisamy, S. (2022) "Machinability Analysis of Finish-Turning Operations for Ti6Al4V Tubes Fabricated by Selective Laser Melting", Metals, 12(5), 806.
[9] Li, Y., Yang, C., Zhao, H., Qu, S., Li, X., and Li, Y. (2014) ‘New Developments of Ti-Based Alloys for Biomedical Applications’, Materials, 7(3), 1709–1800, available: https://doi.org/10.3390/ma7031709.
[10] Lizzul, L. et al. (2020) “Influence of additive manufacturing-induced anisotropy on tool wear in end milling of ti6al4v,” Tribology International, 146, p. 106200. Available at: https://doi.org/10.1016/j.triboint.2020.106200.
[11] Milton, S., Morandeau, A., Chalon, F., and Leroy, R. (2016) ‘Influence of Finish Machining on the Surface Integrity of Ti6Al4V Produced by Selective Laser Melting’, Procedia CIRP, 45, 127–130, available: https://doi.org/10.1016/j.procir.2016.02.340.
[12] Murr, L., Quinones, S., Gaytan, S., Lopez, M., Rodela, A., Martinez, E., Hernandez, D., Martinez, E., Medina, F. and Wicker, R., 2009. Microstructure and mechanical behavior of Ti–6Al–4V produced by rapid-layer manufacturing, for biomedical applications. Journal of the Mechanical Behavior of Biomedical Materials, 2(1), pp.20-32.
[13] Shunmugavel, M., Polishetty, A., and Littlefair, G. (2015) ‘Microstructure and Mechanical Properties of Wrought and Additive Manufactured Ti-6Al-4V Cylindrical Bars’, Procedia technology, 20, 231–236, available: https://doi.org/10.1016/j.protcy.2015.07.037.
[14] Shunmugavel, M., Polishetty, A., Goldberg, M., Singh, R., and Littlefair, G. (2017) ‘A comparative study of mechanical properties and machinability of wrought and additive manufactured (selective laser melting) titanium alloy – Ti-6Al-4V’, Rapid prototyping journal, 23(6), 1051–1056, available: https://doi.org/10.1108/RPJ-08-2015-0105.
[15] Bruno, J., Rochman, A., and Cassar, G. (2017) ‘Effect of Build Orientation of Electron Beam Melting on Microstructure and Mechanical Properties of Ti-6Al-4V’, Journal of materials engineering and performance, 26(2), 692–703, available: https://doi.org/10.1007/s11665-017-2502-4.
[16] Stéphane Gorsse, Christopher Hutchinson, Mohamed Gouné & Rajarshi Banerjee (2017) Additive manufacturing of metals: a brief review of the characteristic microstructures and properties of steels, Ti-6Al-4V and high-entropy alloys, Science and Technology of Advanced Materials, 18:1, 584-610, DOI:10.1080/14686996.2017.1361305
[17] Thijs, L., Verhaeghe, F., Craeghs, T., Humbeeck, J.V., and Kruth, J.-P. (2010) ‘A study of the microstructural evolution during selective laser melting of Ti–6Al–4V’, Acta materialia, 58(9), 3303–3312, available: https://doi.org/10.1016/j.actamat.2010.02.004.
[18] Vrancken, B., Thijs, L., Kruth, J.-P., and Van Humbeeck, J. (2012) ‘Heat treatment of Ti6Al4V produced by Selective Laser Melting: Microstructure and mechanical properties’, available: https://doi.org/10.1016/j.jallcom.2012.07.022.
[19] Watanabe, Y. et al. (2019) “3D visualization of top surface structure and pores of 3D printed ti-6al-4v samples manufactured with tic heterogeneous nucleation site particles,” Metallurgical and Materials Transactions A, 51(3), pp. 1345–1352. Available at: https://doi.org/10.1007/s11661-019-05597-z.
[20] Yadroitsev, I., Krakhmalev, P., and Yadroitsava, I. (2014) ‘Selective laser melting of Ti6Al4V alloy for biomedical applications: Temperature monitoring and microstructural evolution’, Journal of alloys and compounds, 583, 404–409, available: https://doi.org/10.1016/j.jallcom.2013.08.183.