Журналы →  Tsvetnye Metally →  2021 →  №5 →  Назад

METAL PROCESSING
Название Influence of shear deformation under pressure at different temperatures on mechanical properties of E125 zirconium alloy
DOI 10.17580/tsm.2021.05.10
Автор Rogachev S. O., Nikulin S. A., Khatkevich V. M.
Информация об авторе

Natinal University of Science and Technology MISiS, Moscow, Russia:

S. O. Rogachev, Associate Professor, Candidate of Тесhnical Sciences, e-mail: csaap@mail.ru
S. A. Nikulin, Head of the Chair, Doctor of Тесhnical Sciences, Professor, e-mail: nikulin@misis.ru
V. M. Khatkevich, Chief Engineer, Candidate of Тесhnical Sciences, e-mail: hatvm87@mail.ru

Реферат

The work is devoted to study the effect of shear deformation by highpressure torsion (HPT) at various temperatures, as well as post-deformation annealing on the mechanical properties of an industrial zirconium alloy Zr–2.5% Nb (russian standart E125). The HPT-deformation was carried out using flat samples of the alloy in a recrystallized with a diameter of 20 mm and an initial thickness of 1.5 mm. HPT was performed at room temperature, as well as at temperatures of 300 and 325 oC, using a pressure of 4 GPa and the number of turns of the lower anvil N = 5. As methods for studying the material, we used Vickers microhardness measurement, X-ray phase analysis, and tensile testing of miniature samples cut from the alloy after HPT. It was shown that the greatest hardening of the alloy was observed after HPT at room temperature: the microhardness values increased 2.4–2.5 times (380–400 HV) compared with the initial state of the alloy. Annealing of alloy samples processed by HPT leads to the softening of the material. An increase in the HPT-process temperature enhances the thermal stability of the alloy. The mechanical properties (yield and tensile strength, and relative elongation) of alloy samples after HPT and subsequent annealing are determined. After the HPT-deformation, the alloy samples are characterized by high strength and very low ductility: the failure of the samples under tensile occurs on the elastic area of the stress–strain curve at stresses of 920–1060 MPa. The modes of deformationheat
treatment of the alloy providing a combination of high strength and satisfactory ductility are established. For the alloy processed by HPT at a temperature of 325 oС and annealed at a temperature of 400 oС, the offset yield point and tensile strength were 840 and 900 MPa, respectively, and the relative elongation was 4%. The results allows to expand the applicability of zirconium alloys as a material for the manufacture of medical implants and medical instruments.
The research was implemented under financial support of the Russian Foundation for Basic Research (RFFI) within the framework of the scientific project No. 20-32-70007.
The authors express their gratitude to R. V. Sundeev, Cand. Phys.-Math., for his assistance in conduction of X-ray phase analysis.

Ключевые слова Zirconium alloys; severe plastic deformations; high-pressure torsion; mechanical properties; microhardness; phase transformations; omega phase; thermal stability.
Библиографический список

1. Zaymovskiy А. S., Nikulina А. V., Reshetnikov F. G. Zirconium alloys in the nuclear industry. Moscow : Energoatomizdat, 1994. 253 p.
2. Isaenkova М. G., Perlovich Yu. А., Fesenko V. А., Solovev V. N., Sergacheva М. I. Influence of process parameters of cladding tubes manufacturing on their crystallographic texture. Tsvetnye Metally. 2014. No. 12. pp. 62–67.
3. Loginov Yu. N., Polishchuk Е. G., Tugbaev Yu. V. Features of zirconiumbased alloys tube processing process modelling. Tsvetnye Metally. 2018. No. 9. pp. 82–87.
4. Rubitschek F., Niendorf T., Karaman I., Maier H. J. Corrosion fatigue behavior of a biocompatible ultrafine-grained niobium alloy in simulated body fluid. Journal of the mechanical behavior of biomedical Materials. 2012. Vol. 5. P. 181–192.
5. Shaposhnikov Yu. G., Sherepo К. М., Gorokhov V. Yu., Berchenko G. N. Zirconium for explants in traumatology and orthopedics. Ortopediya, travmatologiya i protezirovanie. 1993. No. 1. pp. 31–33.
6. Ryoo H. S., Yu S. H., Oh K. H., Hwang S. K. Monte-Carlo Simulation of Grain Growth in Zr Processed by ECAP. Material Science Forum. 2002. Vol. 408–412. pp. 655–660.
7. Perlovich Yu., Isaenkova M., Fesenko V., Grekhov M., Seng-Ho Yu et al. Features of Texture and Structure Development in Zirconium under Equal Channel Angular Pressing. Materials Science Forum. 2006. Vol. 503–504. pp. 859–864.
8. Companhoni M. V. P., Matheus J. R. G., Marcondes T. L., Pinto A. L. Analysis of microstructure and microhardness of Zr-2.5Nb processed by High-Pressure Torsion (HPT). Journal of Materials Science. 2012. Vol. 47, No. 22. pp. 7835–7840.
9. Haraguchi R., Yoshimatsu Y., Nagaoka T., Arita M., Edalati K., Horita Z. Electrical resistivity mapping of titanium and zirconium discs processed by high-pressure torsion for homogeneity and phase transformation evaluation. Journal of Materials Science. 2017. Vol. 52. pp. 6778–6788.
10. Zhilyaev A. P., Sabirov I., González-Doncel G., Molina-Aldareguía J., Srinivasarao B. et al. Effect of Nb additions on the microstructure, thermal stability and mechanical behavior of high pressure Zr phases under ambient conditions. Materials Science and Engineering A. 2011. Vol. 528. pp. 3496–3505.
11. Nikulin S. A., Rozhnov A. B., Rogachev S. O., Khatkevich V. M., Turchenko V. A. et al. Investigation of structure, phase composition, and mechanical properties of Zr – 2.5% Nb alloy after ECAP. Materials Letters. 2016. Vol. 169. pp. 223–226.
12. Khasanova G. F., Khisamov R. Kh., Safarov I. М., Mulyukov R. R. Phase transformations of nanostructured Zr – 2.5% Nb alloy with different initial state. Perspektivnye materialy. 2011. No. 12. pp. 540–545.
13. Pérez-Prado M. T., Gimazov A. A., Ruano O. A., Kassner M. E., Zhilyaev A. P. Bulk nanocrystalline -Zr by high-pressure torsion. Scripta Materialia. 2008. Vol. 58. pp. 219–222.
14. Edalati K., Horita Z., Yagi S., Matsubara E. Allotropic phase transformation of pure zirconium by high-pressure torsion. Materials Science and Engineering A. 2009. Vol. 523. pp. 277–281.
15. Dobromyslov А. V., Taluts N. I. The structure of zirconium and its alloys. Yekaterinburg : UrO RAN, 1997. 228 p.
16. Rogachev S. O., Nikulin S. A., Rozhnov A. B., Gorshenkov M. V. Microstructure, Phase Composition, and Thermal Stability of Two Zirconium Alloys Subjected to High-Pressure Torsion at Different Temperatures. Advanced Engineering Materials. 2018. Vol. 20, Iss. 9. 1800151.
17. Rogachev S. O., Nikulin S. A., Khatkevich V. M., Gorshenkov M. V., Sundeev R. V. et al. Effect of annealing on structural and phase transformations and mechanical properties of ultrafine-grained E125 zirconium alloy obtained by high-pressure torsion. Materials Letters. 2017. Vol. 206. pp. 26–29.
18. Shelekhov E. V., Sviridova T. A. Programs for X-ray analysis of polycrystals. Metal Science and Heat Treatment. 2000. Vol. 42, No. 8. pp. 309–313.

Language of full-text русский
Полный текст статьи Получить
Назад