Issue
Metall. Res. Technol.
Volume 122, Number 6, 2025
Special Issue on ‘Advances in Powder Technologies: Highlights from EuroPM2025’, edited by Efrain Carreño-Morelli, Elena Gordo and Lars Nyborg
Article Number 608
Number of page(s) 14
DOI https://doi.org/10.1051/metal/2025080
Published online 01 October 2025
  1. R. Evans, Selection and testing of metalworking fluids, in Metalworking Fluids (MWFs) for Cutting and Grinding, edited by V. P. Astakhov and S. Joksch (Woodhead Publ. Ser. Met. Surf. Eng., 2012), pp. 23–78 [Google Scholar]
  2. X. Zhao, W. Ke, S. Zhang et al., Potential failure cause analysis of tungsten carbide end mills for titanium alloy machining, Eng. Failure Anal. 66, 321–327 (2016) [Google Scholar]
  3. P.-J. Arrazola, A. Garay, L.-M. Iriarte et al., Machinability of titanium alloys (Ti6Al4V and Ti555.3), J. Mater. Process. Technol. 209, 2223–2230 (2009) [Google Scholar]
  4. Z. Wang, M. Rahman, High-speed machining, in Comprehensive Materials Processing, edited by S. Hashmi, G.F. Batalha, C.J. Van Tyne, B. Yilbas (Elsevier, 2014), pp. 221–253 [Google Scholar]
  5. P.A. Dearnley, A.N. Grearson, Evaluation of principal wear mechanisms of cemented carbides and ceramics used for machining titanium alloy IMI 318, Mater. Sci. Technol. 2, 47–58 (1986) [Google Scholar]
  6. L. Liao, F. Cai, X. Chang et al., A novel slurry for ultra-smooth chemical mechanical polishing of TC4 titanium alloy, Appl. Surf. Sci. 686, 162167 (2025) [Google Scholar]
  7. Y. Su, N. He, L. Li et al., An experimental investigation of effects of cooling/lubrication conditions on tool wear in high-speed end milling of Ti-6Al-4V, Wear 261, 760–766 (2006) [Google Scholar]
  8. A. Graves, A. Salmasi, S. Graham et al., An experimental and theoretical investigation on Ti-5553/WC-Co (6%) chemical interactions during machining and in diffusion couples, Wear 516, 204604 (2023) [Google Scholar]
  9. R. Lindvall, J.M.B. Bermejo, A. Bjerke et al., On the wear mechanisms of uncoated and coated carbide tools in milling titanium alloys, Int. J. Refractory Metals Hard Mater. 106806 (2024) [Google Scholar]
  10. W. Min, Z. Youzhen, Diffusion wear in milling titanium alloys, Mater. Sci. Technol. 4, 548–553 (1988) [Google Scholar]
  11. C. Botermans, Study of Porosity in Uncoated Cemented Carbide Tools During Titanium Alloy Machining, M.S. thesis, Dept. of Mechanical Engineering, Lund University, Lund, Sweden (2023) [Google Scholar]
  12. P.D. Hartung, B.M. Kramer, B.F. Von Turkovich, Tool wear in titanium machining, CIRP Ann. 31, 75–80 (1982) [Google Scholar]
  13. S. Norgren, Sandvik Coromant internal report CTMI1314, unpublished, May 13, (2002) [Google Scholar]
  14. O. Hatt, On the mechanism of tool crater wear in titanium alloy machining, Doctoral dissertation, Dept. of Mechanical Engineering, University of Sheffield, Sheffield, UK (2016) [Google Scholar]
  15. O. Hatt, P. Crawforth, M. Jackson, On the mechanism of tool crater wear during titanium alloy machining, Wear 374–375, 15–20 (2017) [Google Scholar]
  16. O. Hatt, Z. Lomas, M. Thomas et al., The effect of titanium alloy chemistry on machining induced tool crater wear characteristics, Wear 408–409, 200–207 (2018) [Google Scholar]
  17. C. Ramirez, A.I. Ismail, C. Gendarme et al., Understanding the diffusion wear mechanisms of WC-10% Co carbide tools during dry machining of titanium alloys, Wear 390–391, 61–70 (2017) [Google Scholar]
  18. S. Odelros, B. Kaplan, M. Kritikos et al., Experimental and theoretical study of the microscopic crater wear mechanism in titanium machining, Wear 376377, 115–124 (2017) [Google Scholar]
  19. B. Kaplan, S. Odelros, M. Kritikos et al., Study of tool wear and chemical interaction during machining of Ti6Al4V, Int. J. Refract. Met. Hard Mater. 72, 253–256 (2018) [Google Scholar]
  20. L. von Fieandt, R. M’Saoubi, M. Schwind et al., Chemical interactions between cemented carbide and difficult-to-machine materials by diffusion couple method and simulations, J. Phase Equilibria Diffus. 39, 369–376 (2018) [Google Scholar]
  21. M. Latteman, E. Coronel, J. Garcia, et al., Interaction between cemented carbide and Ti6Al4V alloy in cryogenic machining, in Proceedings of the 19th Plansee Seminar, Reutte, Austria 29, (2017) [Google Scholar]
  22. S. Saketi, S. Odelros, J. Östby et al., Experimental study of wear mechanisms of cemented carbide in the turning of Ti6Al4V, Materials 12, 2822 (2019) [Google Scholar]
  23. A. Graves, S. Norgren, W. Wan et al., On the mechanism of crater wear in a high strength metastable β titanium alloy, Wear 484, 203998 (2021) [Google Scholar]
  24. R. Lindvall, F. Lenrick, R. M’Saoubi et al., Performance and wear mechanisms of uncoated cemented carbide cutting tools in Ti6Al4V machining, Wear 477, 203824 (2021) [Google Scholar]
  25. P. Olander, J. Heinrichs, On wear of WC-Co cutting inserts in turning of Ti6Al4V-a study of wear surfaces, Tribology-Mater. Surfac. Interfaces 15, 181–192 (2021) [Google Scholar]
  26. R. Bejjani, C. Salame, M. Olsson, An experimental and finite element approach for a better understanding of ti-6al-4v behavior when machining under cryogenic environment, Materials 14, 2796, (2021) [Google Scholar]
  27. A. Henjered, M. Hellsing, H.-O. Andrén, H. Nordén, Quantitative microanalysis of carbide/carbide interfaces in WC–Co-base cemented carbides, Mater. Sci. Technol. 2, 847–855 (1986) [Google Scholar]
  28. R.S. Barnes, D.J. Mazey, The effect of pressure upon void formation in diffusion couples, Acta metallurgica 6, 1–7 (1958) [Google Scholar]

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