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Cemented carbide cutting tools coated with silicon nitride

https://doi.org/10.17073/1997-308X-2018-4-104-109

Abstract

The paper describes the technology of producing a wear resistant silicon nitride coating on cemented carbide cutting tools and factors affecting its structure and thickness. A review of domestic and foreign authors’ works is given on the properties and applications of cemented carbides in cutting, drilling, die stamping tools, wear resistant materials, for chipless processing of wood, plastics. It is noted that one of the promising ways of cutting tool development is using indexable throwaway inserts (ITI) with wear resistant coatings. The choice of silicon nitride as a material for cemented carbide tool coating is justified. The data on silicon nitride deposition methods, investigation of cutting tool structures and properties are provided. Laboratory and factory tests of Si3N4-coated cemented carbide tools demonstrated coating applicability in improving the wear resistance and lifetime of cutting inserts.

About the Author

V. S. Panov
National University of Science and Technology «MISIS».
Russian Federation

Dr. Sci. (Tech.), prof., Department of powder metallurgy and functional coatings.

119049, Russia, Moscow, Leninskii pr., 4.



References

1. Samsonov G.V., Epik A.P. Refractory coating. Moscow: Metallurgiya, 1973 (In Russ.).

2. Samsonov G.V., Vinitskii I.M. Refractory compounds. Moscow: Metallurgiya, 1976 (In Russ.).

3. Samsonov G.V., Kulik O.P., Polishchuk V.S. Nitrides production and analysis methods. Kiev: Nauk. dumka, 1978 (In Russ.).

4. Samsonov G.V., Dvorina P.A., Rud’ B.N. Silicides. Moscow: Metallurgiya, 1979 (In Russ.).

5. Tret’yakov V.I. Basic metallurgical science and sintered cemented carbides production technology. Moscow: Metallurgiya, 1976 (In Russ.).

6. Panov V.S., Chuvilin A.M., Fal’kovskii V.V. Technology and properties of sintered cemented carbides and its products. Moscow: MISIS, 2004 (In Russ.).

7. Kolaska H.Y. The dawn of the hard metal age. Powder Metall. Int. 1992. Vol. 24. P. 311—314.

8. Fal’kovskii V.A. Fundamentals of cemented carbides production for metal processing: Аbstract of a thesis of the dissertation of Dr. Sci. (Tech.). Moscow: MISIS, 1997 (In Russ.).

9. Levashov E.A., Rogachev A.S., Kurbatkina V.V. Promising materials and technologies for SHS products. Moscow: MISIS, 2011 (In Russ.).

10. Loshak M.G. Strength and durability of hardmetals. Kiev: Nauk. dumka, 1984 (In Russ.).

11. Panov V.S. Occurrence and way of development of manufacture of domestic hard alloy products. Inorg. Mater. Appl. Res. 2018. Vol. 9. P. 693—698.

12. Rakovskii V.S., Samsonov G.V., Ol’khov I.I. The principles of cemented carbides production. Moscow: Metallurgizdat, 1960 (In Russ.).

13. Samsonov G.V., Vitryanyuk O.K. The modern state of art and future development of cemented carbides. Kiev: Nauk. dumka, 1971 (In Russ.).

14. Panov V.S., Eremeeva Zh.V., Nitkin N.N. Technology, properties, fields of application of domestic manufactured cemented carbides. Moscow: Moskovskii politekh, 2017 (In Russ.).

15. Panov V.S. G.A. Meerson is an establisher of the production of domestic hard alloys and powder high-speed steels. Izvestiya vuzov. Tsvetnaya metallurgiya. 2001. No. 6. P. 40—46 (In Russ.).

16. Williams B. Powder metallurgy: A global market review. In: International powder metallurgy. 15th ed. UK: Innorar communications Ltd., 2012.

17. Zhidovtsev N.A., Kershenbaum V.Ya., Ginzburg E.S., Bikbulatov I.K., Borodina E.N. Drilling bit lifetime. Moscow: Nedra, 1992 (In Russ.).

18. Zakharov D.A. The modifying of composition, structure, technology and working regimes of cemented carbides used in drilling bit production: Abstract of the dissertation of PhD. Samara: SamGTU, 2014 (In Russ.).

19. Kreimer G.S. The strength of cemented carbides. Moscow: Metallurgizdat, 1971 (In Russ.).

20. Fel’kovskii V.A., Klyachko L.I. Cemented carbides. Moscow: Ruda i metally, 2005 (In Russ.).

21. Bondarenko V.P., Gnatenko I.A. The aspects of skeleton structure formation process management in cemented carbides. In: Rock-cutting and metal-working tool: The collection of materials of the 14 Intern. conf. (Kiev, 15—22 Sept. 2011). Kiev: ISM n.a. V.N. Bakul, 2011. P. 423—437 (In Russ.).

22. Babich M.M. Carbon concentration inhomogenuity of cemented carbides and its elimination. Kiev: Nauk. dumka, 1975 (In Russ.).

23. Koval’chenko M.S., Samsonov G.V. Hot pressing. Kiev: Gostekhizdat, 1962 (In Russ.).

24. Kudrya N.A., Gavrilin V.M. Drilling bits for rock materilals construction design. In: Hard alloys and refractory metals. Moscow: Metallurgiya, 1973. No. 14. P. 152—158 (In Russ.).

25. Ivensen V.A. Sintering shrinkage kinetics for metallic powders. Moscow: Metallurgiya, 1971 (In Russ.).

26. Chaporova I.N., Chernyavskii K.S. The structure of sintered cemented carbides. Moscow: Metallurgiya, 1975 (In Russ.).

27. Schwarzkopf P., Kieffer R. Refractory hard metals. N.Y.: Mac Millan, 1953.

28. Kieffer R., Benesovsky F. Hartmetalle. Berlin: Springer-Verlag, 1965.

29. Gurland J. An estimate of contact and continuite of dispersions in opaque samples. AIME. Met. Soc. Trans. 1966. Vol. 236 (5). P. 642—646.

30. Dawihl W.A. Microstructure evolution the cemented carbides WC—Co: Handbook of hard metals. London: H.M. Stationary Office, 1955.

31. Suzuki H., Hayashi K. The beta-free lasser near the surface of vacuum — sintered tungsten carbide-beta-Co alloys containing nitrogen. Planseeber. Pulvermet. 1966. Bd. 14. No. 2. S. 96—109.

32. Amman E., Hennuber M. Cemented carbide body used preferably for rock drilling and mineral cutting. Stahl and Eisen. 1951. Bd. 71. S. 1080—1090.

33. Trent E.M. Express information of VINITI University. Chapt. Cutting tools. 1971. No. 2. P. 21—28 (In Russ.).

34. Exner H.E., Gurland J.E. Role of the binder phase in cemented tangsten carbide-cobalt alloys. J. Mater. 1970. Vol. 5. P. 75—80.

35. Grime H., Kolaska J. Heinrich weidenfeld erzanlt (in German). Metall. 1978. Bd. 32. S. 989—993.

36. Gee M.G. Hard metals microstructural design. In: Proc. 15th Intern. pleansee seminar (Vienna, Austria, 21—26 Sept. 2001). Vol. 4. P. 245—266.

37. Froschauer L., Fulrath R.M. Direct observation of liquid- phase sintering in the system tangsten carbide-cobalt. Report No. LBL-3189. 1974.

38. Kiryukhantsev-Korneev F.V. The designing of hard, wear resistant coatings in Ti—Si—N, Ti—B—N, Cr—B—N, Ti—Cr—B—N systems: Abstract of the dissertation of PhD. Moscow: MISIS, 2004 (In Russ.).

39. Panov V.S., Shumenko V.N. Silicon nitride coating for cemented carbide tools. Izvestiya vuzov. Poroshkovaya metallurgiya i funktsional’nye pokrytiya. 2012. No. 2. P. 67—70 (In Russ.).

40. Kiryukhantsev-Korneev F.V., Levashov E.A., Shtanskii D.V. Nanostructured Ti—Cr—B—N coatings for cemented carbide cutting tool. Izvestiya vuzov. Poroshkovaya metallurgiya i funktsional’nye pokrytiya. 2010. No. 2. P. 39—46 (In Russ.).

41. Konyashin I., Anikeev A., Senchihin V. Development, production and application of novel grades of coated hardmetals in Russia. Int. J. Refract. Met. Hard Mater. 1996. Vol. 14. P. 41—48.

42. Konyashin I. PVD/CVD Technology for coating cemented carbides. Surf. Coat. Technol. 1995. Vol. 71. P. 277—283.

43. Konyashin I. Thin TiCx films chemically vapor deposited onto cemented carbides from the 278TiCl4—CH4—H2 mixture. Thin Solid Films. 1996. Vol. 278. P. 37—44.

44. Konyashin I. PVD/CVD Technology for coating cemented carbides. Surf. Coat. Technol. 1996. Vol. 53. P. 259—265.

45. Lessiak M., Haubner R. Diamond coatings on hardmetal substrates with CVD coatings as intermediate layers. Surf. Coat. Technol. 2013. Vol. 230. P. 119—123.

46. Guseva M., Babaev V., Khvostov V. High quality diamond films on WC—Co surfaces. Diamond Relat. Mater. 1997. Vol. 6. P. 89—94.

47. Pogozhev Yu.S., Potanin A.Yu., Levashov E.A., Kochetov N.A., Kovalev D.Yu., Rogachev A.S. SHS of TiC—TiNi composites: Effect of Initial temperature and nanosized refractory additives. Int. J. SHS. 2012. Vol. 21. P. 202—211.

48. Pogozhev Yu.S., Levashov E.A., Kudryashov A.E., Zamulaeva E.I., Novikov A.V., Potanin A.Yu. Composite SHS materials based on titanium carbide and nikelide doped with a refractory component. Russ. J. Non-Ferr. Met. 2014. Vol. 55. P. 83—91.

49. Loginov P., Mishnaevsky L., Levashov E.A., Petrzhik M. Diamond and cBN hybrid and nanomodified cutting tools with enhanced performances — development, testing and modeling. Mater. Design. 2015. Vol. 88. P. 310—318.

50. Libenson G.A., Lopatin V.Yu., Komarnitskii G.V. Powder metallurgy processes. Moscow: MISIS, 2001. Vol. 1 (In Russ.).

51. Shuster L.Sh. Cutting tool wear study and formation of surfaces due to adhesive interaction: Abstract of the dissertation of PhD. Kuibyshev: Politekhnicheskii institut, 1975 (In Russ.).

52. Frunk R., Schachner H., Triquet C., M. Kornmann, Lux B. Coating of cemented carbide cutting tools with alumina by chemical vapour deposition. J. Electrochem. Soc. 1976. Vol. 123. P. 285—289.


Review

For citations:


Panov V.S. Cemented carbide cutting tools coated with silicon nitride. Powder Metallurgy аnd Functional Coatings (Izvestiya Vuzov. Poroshkovaya Metallurgiya i Funktsional'nye Pokrytiya). 2018;(4):104-109. (In Russ.) https://doi.org/10.17073/1997-308X-2018-4-104-109

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ISSN 1997-308X (Print)
ISSN 2412-8767 (Online)