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MATERIALS SCIENCE
Название Study of mechanical properties of samples from heat-resistant copper BrKh 0.8 alloy obtained by selective laser melting
DOI 10.17580/tsm.2021.04.11
Автор Grigoryants A. G., Kolchanov D. S., Drenin A. A., Denezhkin A. O.
Информация об авторе

Bauman Moscow State Technical University, Moscow, Russia:

A. G. Grigoryants, Head of “Laser Technologies” Department, Doctor of Technical Sciences, professor, e-mail: mt12@bmstu.ru
D. S. Kolchanov, Associate Professor of “Laser Technologies” Department, Candidate of Technical Sciences, e-mail: kolchanovdmitriy@gmail.com
A. A. Drenin, Assistant of “Laser Technologies” Department, Postgraduate Student, e-mail: drenin@inbox.ru
A. O. Denezhkin, Postgraduate Student of “Laser Technologies” Department, e-mail: denezhkin.anton95@gmail.com

Реферат

Selective laser melting (SLM) technology is a promising method for manufacturing complex parts from many metals and alloys. Copper and copper alloys are widely used in industry due to its high thermal conductivity and low resistivity. The use of chromium as an alloying element can increase the heat resistance of copper and its mechanical properties. In this work, samples were made of heat-resistant copper alloy ПР-БрХ to determine their mechanical properties and porosity values. Before the experiments, particle size, morphological and chemical analysis of the powder was carried out. Samples were prepared using the Additive Solutions D250 selective laser melting facility and a multidirectional laser scanning strategy for the powder layer. As a result of the experiments, samples with porosity of less than 5% were obtained. Which were then subjected to tensile tests and computed tomography. However, some samples were subjected to heat treatment. The test results showed that σ0.2 averages 166.3 MPa, σв — 198 MPa, σp — 42 MPa, ψ — 8.9%, δ — 3.2%. It was also revealed that heat treatment of samples leads to a decrease in strength properties while maintaining plastic.
The research was conducted under financial support of the Russian Foundation of Basic Research within the framework of the scientific project No. 18-38-00940\19.

Ключевые слова Selective laser melting, copper alloy, chromium bronze, additive technologies, powder metallurgy, 3D-printing, mechanical properties
Библиографический список

1. Nikolaev А. К., Novikov А. I., Rozenberg V. М. Chrome bronzes. Moscow : Metallurgiya, 1983.176 p.
2. Rozenberg V. М., Dzutsev V. Т. Diagrams of isothermal decomposition in copper-based alloys: handbook. Moscow : Metallurgiya, 1989. 326 p.
3. Prister P., Forgette B., Whitwham D. Diner O. Herenquel J. Properties imparted by the Dispersion type structure produced be heat treatment of Cu – 0,8 percent Cr alloy. Mem. Sci. Rev. Met. 1971. Vol. 68, No. 10. pp. 677–686.
4. Sato S., Nagata K. On quench sensitivity of Cu – Cr alloys. Journal Jap. Inst. Metals. 1969. Vol. 33, No. 10. pp. 1155–1160.
5. Osintsev О. Е., Fedorov V. N. Copper and copper alloys. Domestic and foreign grades: reference book. Moscow : Mashinostroenie, 2004. 336 p.
6. Semenov B. N. Influence of structure inhomogeneity on soldered joint strength. MiTOM. 1999. No. 10. pp. 13–16.
7. Takaichi A., Nakamoto T., Joko N. et al. Microstructures and mechanical properties of Co – 29 Cr – 6 Mo alloy fabricated by selective laser melting process for dental applications. Journal of the Mechanical Behavior of Biomedical Materials. 2019. No. 21. pp. 67–76.
8. Yanan Zhou, Wei Wei, Jiazhen Yan, Wenbo Liu. et al. Microstructures and metal-ceramic bond properties of Co – Cr biomedical alloys fabricated by selective laser melting and casting. Materials Science and Engineering. 2019. No. 759. pp. 594–602.
9. Grigoryants А. G., Kolchanov D. S., Drenin А. А., Denezhkin А. О. Influence of main parameters on stability of formation of single tracks during selective laser melting of copper alloys. Izvestiya vuzov. Mashinostroenie. 2019. No. 6.
10. Grigoryants А. G., Kolchanov D. S., Drenin А. А. Installation for selective laser melting of metal powders. Additive technologies: present and future. Proceedings of the IV International Conference. Moscow : 2018. pp. 221–234.
11. Simonov А. P., Drenin А. А., Denezhkin А. О. Features of microstructure formation in articles obtained by selective laser melting technology from copper alloys. Politekhnicheskiy molodezhny zhurnal. 2019. No. 11.
12. Shuai Hou, Siyuan Qi, David A. Hutt, Tyrer J. R., Mulan Mu, Zuoxin Zhou. Three dimensional printed electronic devices realized by selective laser melting of copper/ high-density-polyethylene powder mixtures. Journal of Materials Processing Tech. 2018. Vol. 254. pp. 310–324.
13. Kaden L., Matthaus G., Ullsperger T., Seyfarth B., Nolte S. Selective laser melting of copper using ultrashort laser pulses at different wavelengths. Proc. SPIE 10523, Laser 3D Manufacturing V. 2018. 1052312.
14. GOST 1497–84. Metals. Methods of tension test. Introduced: 01-01–1986. Мoscow : IPK Izdatelstvo standartov, 2008.
15. Grigoryants А. G., Shiganov I. N., Misyurov А. I., Tretyakov R. S. Laser additive technologies in mechanical engineering: textbook. Moscow : Izdatelstvo MGTU im. N. E. Baumana, 2018. 280 p.
16. Smiryagin А. P., Smiryagina N. А., Belova А. V. Industrial non-ferrous metals and alloys. 3rd edition enlarged and revised. Moscow : Metallurgiya, 1974. 488 p.

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