Skip to main content
Log in

Analysis of Factors Determining Aspects of Deformation and Hardening of Bronze BrNHK2.5–0.7–0.6

  • Published:
Metallurgist Aims and scope

This article discusses the influence of heat treatment (HT) on the formation of the structure and mechanical properties of nickel–chrome–silicon bronze BrNHK2.5–0.7–0.6. It also presents the results of studies on increasing the alloy strength and elasticity by optimizing HT modes. The data reveal the significant influence of the pre-aging treatment and aging modes on the structure and the possibility of additional improvement on the mechanical properties of the wire from BrNHK2.5–0.7–0.6.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1.
Fig. 2.
Fig. 3.
Fig. 4.

Similar content being viewed by others

References

  1. N. T. Kareva, Yu. D. Koryagin, and G. I. Medvedeva, “Influence of different aging modes on the properties of the BrNHK alloy,” Izv. Vyssh. Ucheb. Zav. Tsvet. Metallurg., No. 6, 64–68 (1985).

  2. N. T. Kareva and Yu. D. Koryagin, “Influence of heat treatment modes on the structure of BrNHK bronze,” Vest. YUUrGU. Ser. “Metallurgiya”, 15, No. 4, 84–88 (2015).

  3. A. K. Nikolaev, “Dispersion hardening as an effective method of synthesis of structural alloys,” RITM, No. 3, 31–35 (2011).

  4. G. A. Danilin, E. Yu. Remshev, G. A. Vorob’eva, M. Yu. Silaev, et.al., “Ensuring of operational reliability of elastic elements by acoustic methods,” Metallurg, No. 3, 48–52 (2015).

  5. D. A. Bespalov, “Investigation of the possibilities of the BrNHK alloy for the manufacture of helical springs,” Metalloobrabotka, No. 6 (102), 24–29 (2017).

  6. G. A. Vorobyeva, E. Yu. Remshev, G. A. Danilin, and D.A. Bespalov, “Influence of thermal and aerothermoacoustic treatment regimes on the structure of BrNHK bronze,” Metallurg, No. 3, 89–94 (2018).

  7. M. Yu. Silaev, E. A. Eskova, D. S. Gerus, and E. Yu. Remshev, “Application of the acoustic emission method in determining the mechanical characteristics of the BrNHK2.5-0.6-0.7 wire in the production of elastic elements,” Vest. Moskovsk. Aviats. Inst., 26, No. 2, 182–192 (2019).

    Google Scholar 

  8. V. A. Lenina, G. A. Vorobyova, E. Yu. Remshev, and Z. N. Rasulov, “Patterns of the formation of the phase composition, structure, and properties of the BrNHK2.5-0.7-0.6 alloy during thermal and aerothermoacoustic processing,” Vest. Mashinostroyen., No. 8, 71–75 (2021).

  9. Zh. P. Pastukhova and A. G. Rakhshtad, Spring Alloys of Non-ferrous Metals [in Russian], 2nd ed., Metallurgiya, Moscow (1983).

  10. V. S. Zolotorevsky, Mechanical Properties of Metals [in Russian], MISiS, Moscow (1998).

  11. V. E. Panin, L. B. Zuev, and V. I. Danilov, “Plastic deformation as a wave process,” Dokl. Acad. Nauk SSSR, 308, 1375–1379 (1989).

    Google Scholar 

  12. L. B. Zuev, V. I. Danilov, and V. V. Gorbatenko, “Autowaves of localized plastic deformation,” JTF, 65, No. 5, 91–103 (1995).

    CAS  Google Scholar 

  13. L. B. Zuev and V. I. Danilov, “On the nature of large-scale correlations in plastic flow,” FTT, 39, No. 8, 1399–1403 (1997).

    CAS  Google Scholar 

  14. V. E. Panin and V. E. Egorushkin, “Deformed solid body as a nonlinear hierarchically organized system,” Fiz. Mezomeh., 14, No. 3, 7–26 (2011).

    CAS  Google Scholar 

  15. G. A. Malygin, “Processes of self-organization of dislocations and plasticity of crystals,” UFN, 169, No. 9, 979–1010 (1999).

    Article  Google Scholar 

  16. L. B. Zuev, V. I. Danilov, and V. V. Gorbatenko, “Autowaves of localized plastic deformation,” JTF, 65, No. 5, 91–103 (1995).

    CAS  Google Scholar 

  17. D. L. Merson, Physical Nature of Acoustic Emission During Deformation Processes in Metals and Alloys [in Russian], Thesis Research of PhD in Physics and Mathematics, Tolyatti, 327 (2001).

  18. Z. I. Bibik and V. D. Natsik, “Acoustic emission during plastic deformation of high-purity aluminum polycrystals,” Metallofizika, 4, No. 4, 92–99 (1982).

    Google Scholar 

  19. M. A. Krishtal, D. L. Merson, and V. P. Alekhin, “Propagation of plastic deformation over the sample cross section and acoustic emission under uniaxial tension of copper,” FMM, 63, No. 5, 1011–1016 (1987).

    CAS  Google Scholar 

  20. L. B. Zuev, B. S. Semukhin, and N. V. Zarikovskaya, “Restructuring of the autowave structure during deformation of polycrystalline aluminum,” JTF, 71, No. 5, 57–62 (2001).

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to V. A. Lenina.

Additional information

Translated from Metallurg, Vol. 66, No. 5, pp. 64–71, May, 2022. Russian DOI https://doi.org/10.52351/00260827_2022_05_64.

Rights and permissions

Springer Nature or its licensor holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Lenina, V.A., Vorobyova, G.A. & Remshev, E.Y. Analysis of Factors Determining Aspects of Deformation and Hardening of Bronze BrNHK2.5–0.7–0.6. Metallurgist 66, 567–577 (2022). https://doi.org/10.1007/s11015-022-01361-8

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s11015-022-01361-8

Keywords

Navigation