Oxidation temperatures of WC-Co cemented tungsten carbides

OBRABOTKAMETALLOV MATERIAL SCIENCE Vol. 26 No. 2 2024 11. Bhaumik S.K., Balasubramaniam R., Upadhyaya G.S., Vaidya M.L. Oxidation behaviour of hard and binder phase modified WC-10Co cemented carbides. Journal of Materials Science Letters, 1992, vol. 11, pp. 1457–1459. DOI: 10.1007/BF00729663. 12. Casas B., Ramis X., Anglada M., Salla J.M., Llanes L. Oxidation-induced strength degradation of WC-Co hardmetals. International Journal of Refractory Metals and Hard Materials, 2001, vol. 19 (4–6), pp. 303–309. DOI: 10.1016/S0263-4368(01)00033-6. 13. Wu X., Shen J., Jiang F., Wu H., Li L. Study on the oxidation of WC-Co cemented carbide under different conditions. International Journal of Refractory Metals and Hard Materials, 2021, vol. 94. DOI: 10.1016/j. ijrmhm.2020.105381. 14. Aly S.T., Amin S.K., El Sherbiny S.A., Abadir M.F. Kinetics of isothermal oxidation of WC–20Co hotpressed compacts in air. Journal of Thermal Analysis and Calorimetry, 2014, vol. 118, pp. 1543–1549. DOI: 10.1007/ s10973-014-4044-4. 15. Campo L. del, Pérez-Sáez R.B., González-Fernández L., Tello M.J. Kinetics inversion in isothermal oxidation of uncoated WC-based carbides between 450 and 800 °C. Corrosion Science, 2009, vol. 51, pp. 707–712. DOI: 10.1016/j.corsci.2008.12.022. 16. Chen L., Yi D., Wang B., Liu H., Wu C. Mechanism of the early stages of oxidation of WC-Co cemented carbides. Corrosion Science, 2016, vol. 103, pp. 75–87. DOI: 10.1016/j.corsci.2015.11.007. 17. Aly S.T., Hamad K.H., Abdel Salam N.F.A., Abdel-Hamid S.M.S. Oxidation kinetics of tungsten carbide20cobalt composite using non-isothermal thermal analysis. International Journal of Engineering Research & Technology, 2018, vol. 7 (11), pp. 140–144. DOI: 10.17577/IJERTV7IS110065. 18. Aristizabal M., Sanchez J.M., Rodriguez N., Ibarreta F., Martinez R. Comparison of the oxidation behaviour of WC-Co and WC-Ni-Co-Cr cemented carbides. Corrosion Science, 2011, vol. 53, pp. 2754–2760. DOI: 10.1016/J. CORSCI.2011.05.006. 19. Voitovich V.B., Sverdel V.V., Voitovich R.F., Golovko E.I. Oxidation of WC-Co, WC-Ni and WC-Co-Ni hard metals in the temperature range 500–800 °C. International Journal of Refractory Metals and Hard Materials, 1996, vol. 14 (4), pp. 289–295. DOI: 10.1016/0263-4368(96)00009-1. 20. Pelekh Т., Matsushita J.-I. Vickers hardness of WC-Co after high temperature oxidation. Journal of the Ceramic Society of Japan, 2002, vol. 110, pp. 228–231. DOI: 10.2109/jcersj.110.228. 21. Tsuchiya N., Fukuda M., Nakai T., Suzuki H. Strength decrease of WC-Co alloy due to surface oxidation. Journal of the Japan Society of Powder and Powder Metallurgy, 1991, vol. 38, pp. 505–509. DOI: 10.2497/ jjspm.38.505. 22. Acchar W., Gomes U.U., Kaysser W.A., Goring J. Strength degradation of a tungsten carbide-cobalt composite at elevated temperatures. Materials Characterization, 1999, vol. 43 (1), pp. 27–32. DOI: 10.1016/S10445803(98)00056-4. 23. Emanuelli L., Pellizzari M., Molinari A., Castellani F., Zinutti E. Thermal fatigue behaviour of WC-20Co and WC-30(CoNiCrFe) cemented carbide. International Journal of Refractory Metals and Hard Materials, 2016, vol. 60, pp. 118–124. DOI: 10.1016/j.ijrmhm.2016.06.014. 24. Ruskandi C., Undayat D.F., Hermana G.N., Nadi M.R.G., Purwadi W. Study on thermal behaviour of tungsten cemented carbide tip scraps. Proceedings of the 6th Mechanical Engineering, Science and Technology International conference (MEST 2022). Atlantis Press, 2023, pp. 107–113. DOI: 10.2991/978-94-6463-134-0_11. 25. Chen X., Liu H., Guo Q., Sun S. Oxidation behavior of WC-Co hard metal with designed multilayer coatings by CVD. International Journal of Refractory Metals and Hard Materials, 2012, vol. 31, pp. 171–178. DOI: 10.1016/j. ijrmhm.2011.10.012. 26. Nesterenko V.P., Maletkina T.Yu., Perevalova O.B., Merkulov V.I., Shulepov I.A., Aref’ev K.P. Sposob opredeleniya optimal’noi skorosti rezaniya [Method for determination of optimal cutting speed]. Patent RF, no. 2465984, 2012. 27. Zhao G., Xia H., Zhang Y., Li L., He N., Hansen H.N. Laser-induced oxidation assisted micro milling of high aspect ratio microgroove on WC-Co cemented carbide. Chinese Journal of Aeronautics, 2021, vol. 34 (4), pp. 465– 475. DOI: 10.1016/j.cja.2020.08.011. 28. Ryzhkin A.A., Bokov A.I., Zotov V.V., Globa D.P. Vliyanie vneshnei sredy na iznos tverdykh splavov [Environmental influence on hard alloy wear]. Vestnik Donskogo gosudarstvennogo tekhnicheskogo universiteta = Vestnik of Don State Technical University, 2010, vol. 10, no. 1 (44), pp. 112–120. 29. Verkhoturov A.D., Konevtsov L.A., Gordienko P.S., Panin E.S. Termokhimicheskoe okislenie tverdykh splavov [Thermochemical oxidation of hard alloys]. Vestnik Dal’nevostochnogo otdeleniya Rossiiskoi akademii nauk = Vestnik of the Far East branch of the Russian academy of sciences, 2009, no. 2 (144), pp. 93–97.

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