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Physical nature of hardening of heat-resistant metal of high hardness formed by plasma in nitrogen medium

https://doi.org/10.17073/0368-0797-2021-12-877-885

Abstract

The structure, phase and chemical composition of a heat­resistant alloy formed by plasma in a nitrogen medium with subsequent high­ temperature tempering have been studied by scanning electron microscopy and microrentgenospectral analysis. It was found that in the deposited alloy, the main phases are a solid solution of α­iron and carbonitrides based on iron, tungsten, chromium, molybdenum, and aluminum (Fe6W6NC and AlN). High­temperature treatment (four­fold high­temperature tempering at a temperature of 580 °C for 1 h) of the deposited coating leads to an increase in the crystal lattice parameters (from 2.866 to 2.89 Å) and in the sizes of coherent scattering regions (from 25 to 100 nm), and to a decrease in internal elastic stresses (from 1000 to 600 MPa). A pronounced oriented dendritic structure is observed on the deposited surface. After surfacing and high­temperature tempering, the oriented dendritic structure is practically not visible. The distribution of microhardness over the depth of the deposited layer in the state after surfacing is characterized by a significant spread at its high average value on the surface of 4.142 GPa (dispersion 1.0956) and the middle part of the surfacing – 5.153 GPa (dispersion 1.5697). The spread of microhardness values is associated with the complex thermal effect of multilayer plasma surfacing along a helical line and mixing of the substrate material with the surfacing coating. High-temperature tempering leads to an equalization of the microhardness values and an increase in its average value to 5.7 – 6.5 GPa. The nature of hardening of the deposited heat­ resistant metal of high hardness, additionally alloyed with nitrogen and aluminum, was clarified. The main hardening of the deposited metal occurs at high temperature tempering due to an increase in the carbide and carbonitride phases and the formation of fine aluminum nitride.

About the Authors

N. N. Malushin
Siberian State Industrial University
Russian Federation

Nikolai N. Malushin, Cand. Sci. (Eng.), Assist. Prof., Leading Engineer of the Chair of Science named after V.M. Finkel

42 Kirova Str., Novokuznetsk, Kemerovo Region – Kuzbass 654007



D. A. Romanov
Siberian State Industrial University
Russian Federation

Denis A. Romanov, Dr. Sci. (Eng.), Prof., Chief Researcher of Department of Scientific Researches

42 Kirova Str., Novokuznetsk, Kemerovo Region – Kuzbass 654007



References

1. Mazur I.P. Improvement of consumer properties and stability of the technological process of hot rod stock production. Materials Scien­ ce Forum. 2008, vol. 575–578, pp. 379–384. https://doi.org/10.4028/www.scientific.net/MSF.575-578.379

2. Gonçalves J.L., De Mello J.D.B., Costa H.L. Wear in cold rolling milling rolls: A methodological approach. Wear. 2019, vol. 426–427, part B, pp. 1523–1535. https://doi.org/10.1016/j.wear.2018.12.005

3. Gonçalves J.L., De Mello J.D.B., Costa H.L. Tribological behaviour of alternative surface modifications for cold rolling mill rolls. Wear. 2021, vol. 470–471, article 203614. https://doi.org/10.1016/j.wear.2021.203614

4. De Mello J.D.B., Gonçalves J.L., Costa H.L. Influence of surface texturing and hard chromium coating on the wear of steels used in cold rolling mill rolls. Wear. 2013, vol. 302, no. 1–2, pp. 1295–1309. https://doi.org/10.1016/j.wear.2013.02.006

5. Hou Z.­W., Dong Y.­W., Jiang Z.­H., Yao K.­A., Li Y.­S., Cao Y.­L. Transient simulations and experiments on compound roll produced by electroslag remelting cladding. Metallurgical and Materials Transactions B: Process Metallurgy and Materials Processing Science. 2021, vol. 52, no. 2, pp. 598–610. https://doi.org/10.1007/s11663-020-02019-z

6. Kim M.­S., Park K.­S., Kim D.­I., Suh J.­Y., Shim J.­H., Hong K.T., Choi S.­H. Heterogeneities in the microstructure and mechanical properties of high­Cr martensitic stainless steel produced by repetitive hot roll bonding. Materials Science and Engineering: A. 2021, vol. 801, article 140416. https://doi.org/10.1016/j.msea.2020.140416

7. Barkov L.A., Samodurova M.N., Galkina D.P. Rolling of refractory metals on four-roll passes rolling mills. International Conference on Industrial Engineering. 2019, pp. 1929–1935. https://doi.org/10.1007/978-3-319-95630-5_207

8. Colombini R., Molinaroli L., Simonetti R., Colombo L.P.M., Manzolini G. Numerical analysis of different designs of roll­bond absorber on PV/T module and performance assessment. Applied Thermal Engineering. 2021, vol. 192, article 116873. https://doi.org/10.1016/j.applthermaleng.2021.116873

9. Aushev A.F., Bedrin A.G., Mironov I.S., Porozhnetov P.N. Device for plasma marking of metal items. Journal of Optical Technology. 2003, vol. 70, no. 4, pp. 257–260. https://doi.org/10.1364/JOT.70.000257

10. Kartsev S.V. Mathematical model of optimization of controlled parameters of the plasma surfacing technological process of wear-resistant coatings. Journal of Machinery Manufacture and Reliability. 2020, vol. 49, pp. 823–828. https://doi.org/10.3103/S1052618820090095

11. Konstantinov D., Pustovoitov D., Pesin A. Influence of microstructure on inhomogeneity of stress and strain in the deformation zone during asymmetric cold rolling of ferritic-pearlitic steels. Procedia Manufacturing. 2020, vol. 50, pp. 514–519. https://doi.org/10.1016/j.promfg.2020.08.093

12. Konstantinov D., Pesin A., Pustovoytov D. Multiscale simulation of the stress-strain state of low carbon steel strip processed by asymmetric rolling. Solid State Phenomena. 2020, vol. 304, pp. 107–112. https://doi.org/10.4028/www.scientific.net/SSP.304.107

13. Neulybin S.D., Schitsyn Y.D., Belinin D.S., Permyakov G.L. Prospects of using plasma surfacing to producing of layered materials. International Journal of Emerging Trends in Engineering Research. 2020, vol. 8, no. 7, pp. 3562–3568. https://doi.org/10.30534/ijeter/2020/111872020

14. Malushin N.N., Valuev D.V. Ensuring the Quality of Metallurgical Equipment Parts at all Stages of their Life Cycle by Applying Plasma Surfacing with Heat­Resistant Steels of High Hardness. Tomsk: Tomsk Polytechnic University, 2013, 358 p. (In Russ.).

15. Geller Yu.A. Tool Steels. Moscow: Metallurgiya, 1975, 584 p. (In Russ.).

16. Malushin N.N., Kovalev A.P., Osetkovskii V.L., Nikonenko E.L., Osetkovskii I.V. Influence of high­temperature tempering on the properties of chromium-tungsten metal of high hardness deposited by plasma surfacing in a protective alloying nitrogen medium. Zagotovitel’nye proizvodstva v mashinostroenii. 2017, vol. 15, no. 12, pp. 541–546. (In Russ.).

17. Malushin N.N., Romanov D.A., Kovalev A.P., Osetkovskii V.L., Bashchenko L.P. Structural­phase state of heat­resistant alloy of high hardness is formed by plasma welding in the environment of nitrogen and high temperature tempering. Izvestiya vuzov. Fizika. 2019, vol. 62, no. 10, pp. 106–111. (In Russ.). https://doi.org/10.17223/00213411/62/10/106

18. Malushin N.N., Romanov D.A., Kovalev A.P., Budovskikh E.A., Chen X. Structure of high­speed alloy after plasma surfacing in nitrogen and heat treatment. Izvestiya. Ferrous Metallurgy. 2020, vol. 63, no. 9, pp. 707–715. (In Russ.). https://doi.org/10.17073/0368-0797-2020-9-707-715

19. Bataev V.A., Bataev A.A. Composite Materials: Structure, Production, Application. Novosibirsk: Novosibirsk State Technical University, 2002, 383 p. (In Russ.).

20. Kul’kov S.N., Gnyusov S.F. Carbide Steels Based on Titanium and Tungsten Carbides. Tomsk: NTL, 2006, 240 p. (In Russ.).


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Malushin N.N., Romanov D.A. Physical nature of hardening of heat-resistant metal of high hardness formed by plasma in nitrogen medium. Izvestiya. Ferrous Metallurgy. 2021;64(12):877-885. (In Russ.) https://doi.org/10.17073/0368-0797-2021-12-877-885

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ISSN 0368-0797 (Print)
ISSN 2410-2091 (Online)