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MATERIALS SCIENCE
Название Evolution of structure and properties of heat-resistant nickel alloy after selective laser melting, hot isostatic pressing and heat treatment
DOI 10.17580/tsm.2017.01.13
Автор Sufiyarov V. Sh., Popovich A. A., Borisov E. V., Polozov I. A.
Информация об авторе

Peter the Great Saint Petersburg Polytechnic University, Saint Petersburg, Russia:

V. Sh. Sufiiarov, Leading Researcher, e-mail: vadim.spbstu@yandex.ru
A. A. Popovich, Professor, Director of Institute of Metallurgy, Mechanical Engineering and Transport, e-mail: popovicha@mail.ru
E. V. Borisov, Post-Graduate Student, Researcher, e-mail: evgenii.borisov@icloud.com
I. A. Polozov, Post-Graduate Student, Engineer, e-mail: igor.polozov@gmail.com

Реферат

The paper describes the study of density, microstructure, phase composition and mechanical properties of samples made of heat resistant nickel alloy Inconel 718 by selective laser melting technology (SLM). The effects of the hot isostatic pressing (HIP) and heat treatment on microstructure, porosity and phase composition of the sample are studied. Hot isostatic pressing in both regimes significantly compacted samples after the SLM. In this case, the density of the samples exceeded 99.9%. This confirms the effectiveness of this method to increase the density of the samples. Differences in microstructure of samples are according to subsequent processing after SLM. Microstructure after HIP consists of equiaxed grains of -Ni, ranging in size from 55 to 110 μm. After the heat treatment microstructure of material is characterized by inequigranular grains with uniformly distributed precipitates of  γ"-phase (Ni3Nb). It is observed in the sample coarse grains with size up to 200 μm and grains sized 50–80 μm. This irregularity is, presumably, a result of incompleteness of recrystallization process. Hardness measurements show that samples have high values of hardness after selective laser melting. Values of hardness after hot isostatic pressing are below hardness of samples after SLM, which appears to be associated with releasing of internal quench stresses generated during SLM. Formation during thermal processing of reinforcing particles γ"-phase (Ni3Nb) increases the value of material hardness. Investigation of mechanical properties show that after hot isostatic pressing and heat treatment, the strength properties become higher and ductility is slightly lower, while values of properties become more stable. Strength characteristics exceed requirements for hot rolled samples of the alloy according a technical specification. Ductility of samples, thus, is placed at lower boundary of requirements.

Ключевые слова Additive manufacturing, selective laser melting, additive technologies, nickel superalloys, powder metallurgy, heat treatment, hot isostatic pressing
Библиографический список

1. Chester T. Sims, Norman S. Stoloff, William C. Hagel. Superalloys II: High-Temperature Materials for Aerospace and Industrial Power. Moscow : Metallurgiya, 1995. 385 p.
2. Reed R. C. The Superalloys: Fundamentals and Applications. Cambridge : Cambridge University Press, 2006. 372 p.
3. Zlenko M. A., Popovich A. A., Mutylina I. N. Additive technologies in mechanical engineering. Saint Petersburg : Publishing House of Polytechnical University, 2013. 222 p.
4. Sufiiarov V. S., Popovich A. A., Borisov E. V., Polozov I. A. Selective laser melting of heat-resistant ni-based alloy. Non-Ferrous Metals. 2015. Vol. 2015, No. 1. pp. 32–35.
5. Smelov V. G., Sotov A. V., Agapovichev A. V. Research on the possibility of restoring blades while repairing gas turbine engines parts by selective laser melting. IOP Conference Series: Materials Science and Engineering. 2016. Vol. 140, No. 1. 012019.
6. Holzweissig M. J. et al. Microstructural characterization and mechanical performance of hot work tool steel processed by selective laser melting. Metallurgical and Materials Transactions B. 2015. Vol. 46, No. 2. pp. 545–549.
7. Smelov V. G. et al. Selective laser melting of metal powder of steel 3161. IOP Conference Series: Materials Science and Engineering. 2016. Vol. 142, No. 1. 012071.
8. Ströner J., Terock M., Glatzel U. Mechanical and microstructural investigation of nickel-based superalloy IN718 manufactured by selective laser melting (SLM). Advanced Engineering Materials. 2015. Vol. 17, No. 8. pp. 1099–1105.
9. Wang X., Gong X., Chou K. Review on powder-bed laser additive manufacturing of Inconel 718 parts. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture. 2016. pp. V001T001A053.
10. Zhang D. et al. Effect of standard heat treatment on the microstructure and mechanical properties of selective laser melting manufactured Inconel 718 superalloy. Materials Science and Engineering: A. 2015. Vol. 644. pp. 32–40.
11. Popovich A. A., Sufiiarov V. S., Polozov I. A., Borisov E. V. Microstructure and mechanical properties of Inconel 718 produced by SLM and subsequent heat treatment. Key Engineering Materials. 2015. No. 651–653. pp. 665–670.
12. Libenson G. A., Lopatin V. Yu., Komarnitskiy G. V. Powder metallurgy processes. Volume 1. Production of metallic powders. Moscow : MISiS, 2001. 368 p.
13. Inconel 718 Datasheet. Available at : http://www.specialmetals.com/documents/Inconel%20alloy%20718.pdf
14. State Standard GOST 1497–84. Metals. Methods of tension test. Introduced: 1986–01–01. (in Russian)
15. State Standard GOST R ISO 6507-1–2007. Metals and alloys. Vickers hardness test. Part 1. Test method. Introduced: 2008–08–01.
16. State Standard GOST 25281–82. Powder metallurgy. Method of determination of formings density. Introduced: 1983–01–01.
17. Brenne F. et al. Microstructural design of Ni-base alloys for hightemperature applications: impact of heat treatment on microstructure and mechanical properties after selective laser melting. Progress in Additive Manufacturing. 2016. Vol. 1, No. 3. pp. 141–151.
18. Averyanova M. et al. Optimization of Selective Laser Melting technology using design of experiments method. Innovative Developments in Virtual and Physical Prototyping: Proceedings of the 5th International Conference on Advanced Research in Virtual and Rapid Prototyping, Leiria, Portugal, 28 September – 1 October, 2011. CRC Press, 2011. p. 459.
19. AMS 5664 Nickel alloy, corrosion and heat resisitant, bars, forgings, and rings 52.5Ni – 19Cr – 5.1Cb – 0.90Ti – 0.50Al – 18Fe consumable electrode or vacuum induction melted, 1950 оF (1066 оC) solution heat treated, precipitation hardenable.

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