

Study of the composition and properties of the intermetallic layer of Al–Ti and Ni–Ti obtained on a titanium alloy for laser processing
https://doi.org/10.22349/1994-6716-2022-110-2-28-35
Abstract
The results of a study of intermetallic coatings of the Al–Ti and Ni–Ti systems obtained using the method of cold gas-dynamic spraying on a titanium alloy substrate and laser processing are presented. The precursor coating was obtained by cold spray deposition of aluminum and nickel and then it was processed by a laser. The change in the composition and properties of the coating under different laser processing modes is shown. The structure and microhardness of the coating are investigated, and the results of X-ray phase analysis are presented.
About the Authors
D. A. GerashchenkovRussian Federation
Cand Sc. (Eng)
49 Shpalernaya St, 191015 St Petersburg
E. Yu. Gerashchenkova
Russian Federation
49 Shpalernaya St, 191015 St Petersburg
A. A. Mozhayko
Russian Federation
49 Shpalernaya St, 191015 St Petersburg; 29 Polytechnicheskaya St, 195251 St Petersburg
A. M. Makarov
Russian Federation
49 Shpalernaya St, 191015 St Petersburg
A. N. Belyakov
Russian Federation
49 Shpalernaya St, 191015 St Petersburg
R. Yu. Bystrov
Russian Federation
49 Shpalernaya St, 191015 St Petersburg
References
1. Inozemtsev, A.A., Bashkatov, I.G., Koryakovtsev, A.S., Titanovye splavy v izdeliyakh razrabotki OAO Aviadvigatel [Titanium alloys in products developed by Aviadvigatel OJSC], Sovremennye titanovye splavy i problemy ikh razvitiya, Moscow: VIAM, 2010, pp. 43–46.
2. Nochovnaya, N.A., Bazyleva, O.A., Kablov, D.E., Panin, P.V., Intermetallicheskie splavy na osnove titana i nikelya [Intermetallic alloys based on titanium and nickel], Kablov, E.N., (Ed.), Moscow: VIAM, 2018.
3. Titanium’2003: Science and Technology, Proc. 10th World Conf. on Titanium, Hamburg, Germany, 2003, No 1–5, pp. 3425.
4. Grinberg, B.A., Ivanov, M.A., Intermetallidy Ni3Al i TiAl: mikrostruktura, deformatsionnoe povedenie [Intermetallides Ni3Al and TiAl: microstructure, deformation behavior], Ekaterinburg: Ural Branch of the Russian Academy of Sciences, 2002.
5. Shipway, P.H., Hussain, T., Preston, S.P., Davis C., Process parameter optimisation of laser clad iron based alloy: Predictive models of deposition efficiency, porosity and dilution, Surface and Coatings Technology, 2018, May, pp. 198–207
6. Leyens, С., Beyer, E., Innovations in laser cladding and direct laser metal deposition, Laser Surface Engineering, Lawrence, J.R., Waugh, D., (Eds.), Cambridge: Elsevier, 2015, pp. 181–192.
7. Voliansky, I., Shishkovsky, I.V., Yadroitsev, I., Shcherbakov, V.I., Morozov, Yu.G., Layer-by-layer laser synthesis of intermetallic compounds of the Cu–Al–Ni system and the shape memory effect, Inorganic Materials, 2016, V. 52(6), pp. 617–623.
8. Geraschenkov, D.A., Vasiliev, A.F., Farmakovsky, B.V., Mashek, A.Ch., Issledovanie temperatury potoka v protsesse kholodnogo gazodinamicheskogo napyleniya funktsionalnykh pokrytiy [Study of the flow temperature in the process of cold gas-dynamic spraying of functional coatings], Voprosy Materialovedeniya, 2014, V. 1(77), pp. 87–96.
9. Oryshchenko, A.S., Gerashchenkov, D.A., Aluminum matrix functional coatings with high microhardness on the basis of Al–Sn + Al2O3 composite powders fabricated by cold gas dynamic spraying, Inorganic Materials: Applied Research, 2016, V. 7(6), pp. 863–867, doi: 10.1134/S2075113316060125.
10. Papyrin, A., Kosarev, V., Klinkov, S., Alkhimov, A., Fomin, V., Cold spray technology, Elsevier, 2007.
11. Nath, A.K., Sarkar, S., Chapter 11 Laser Transformation Hardening of Steel In Woodhead Publishing Series in Welding and Other Joining Technologies Advances in Laser Materials Processing, Woodhead Publishing, 2018, pp. 257–298.
12. Gerashchenkov, D.A., Farmakovsky, B.V., Bobkova, T.I., Klimov, V.N., Features of the Formation of Wear-Resistant Coatings from Powders Prepared by a Micrometallurgical Process of High-Speed Melt Quenching, Metallurgist, 2017, No 60 (9–10), pp. 1103–1112.
13. Tang, C., Cheng, F., Man, H., Effect of laser surface melting on the corrosion and cavitation erosion behaviors of a manganese–nickel–aluminum bronze, Materials Science and Engineering: A, V. 373 (1–2), pp. 195–203, doi: 10.1016/j.msea.2004.01.016.
14. Kwok, C.T., Cheng, F.T., Man H.C., Surf. Coat. Technol., 2001, No 145, pp. 206–214.
Review
For citations:
Gerashchenkov D.A., Gerashchenkova E.Yu., Mozhayko A.A., Makarov A.M., Belyakov A.N., Bystrov R.Yu. Study of the composition and properties of the intermetallic layer of Al–Ti and Ni–Ti obtained on a titanium alloy for laser processing. Voprosy Materialovedeniya. 2022;(2(110)):28-35. (In Russ.) https://doi.org/10.22349/1994-6716-2022-110-2-28-35