Obrabotka Metallov 2026 Vol. 28 No. 3

OBRABOTKAMETALLOV Vol. 28 No. 3 2026 248 MATERIAL SCIENCE 3. Valiev R.Z., Islamgaliev R.K., Alexandrov I.V. Bulk nanostructured materials from severe plastic deformation. Progress in Materials Science, 2000, vol. 45, pp. 103–189. DOI: 10.1016/S0079-6425(99)00007-9. 4. Osintsev O.E., Fedorov V.N. Med’ i mednye splavy. Otechestvennye i zarubezhnye marki [Copper and copper alloys. domestic and foreign brands]. Reference book. 2nd ed. rev. Moscow, Innovatsionnoe mashinostroenie Publ., 2016. 360 p. ISBN 978-5-9907638-3-8. 5. Kroupa A., Zobač O., Richter K.W. The thermodynamic reassessment of the binary Al–Cu system. Journal of Materials Science, 2021, vol. 56, pp. 3430–3443. DOI: 10.1007/s10853-020-05423-7. 6. Zobac O., Kroupa A., Zemanova A., Richter K.W. Experimental вescription of the Al–Cu binary phase diagram. Metallurgical and Materials Transactions A, 2019, vol. 50, pp. 3805–3815. DOI: 10.1007/s11661-01905286-x. 7. Alés A. Study of diff erent structures derives of β-Cu3Al by means of ab-initio calculations and quasi-harmonic approximation. Computational Condensed Matter, 2022, vol. 31, p. e00652. DOI: 10.1016/j.cocom.2022. e00652. 8. Huang R., Zhu D., Liao X., Yan Q. Eff ect of ECAP process and subsequent annealing on microstructure and properties of Cu–0.25Se–0.25Te alloy. Journal of Electronic Materials, 2020, vol. 49, pp. 2617–2624. DOI: 10.1007/s11664-020-07975-5. 9. Hase A., Mishina H., Wada M. Correlation between features of acoustic emission signals and mechanical wear mechanisms. Wear, 2012, vol. 292–293, pp. 144–150. DOI: 10.1016/j.wear.2012.05.019. 10. Towsyfyan H., Gu F., Ball A.D., Liang B. Tribological behaviour diagnostic and fault detection of mechanical seals based on acoustic emission measurements. Friction, 2019, vol. 7, pp. 572–586. DOI: 10.1007/ s40544-018-0244-4. 11. Hase A., Mishina H. Identifi cation and evaluation of wear phenomena under electric current by using an acoustic emission technique. Tribology International, 2018, vol. 127, pp. 372–378. DOI: 10.1016/j.triboint.2018.06.027. 12. Kolubaev E.A., Kolubaev A.V., Sizova O.V. Analysis of acoustic emission during sliding friction of manganese steel. Technical Physics Letters, 2010, vol. 36 (8), pp. 762–765. DOI: 10.1134/S1063785010080250. 13. Rubtsov V.E., Kolubaev E.A., Kolubaev A.V., Popov V.L. Using acoustic emission for the analysis of wear processes during sliding friction. Technical Physics Letters, 2013, vol. 39 (2), pp. 223–225. DOI: 10.1134/ S1063785013020235. 14. Filippov A.V., Tarasov S.Yu., Fortuna S.V., Podgornykh O.A., Shamarin N.N., Rubtsov V.E. Microstructural, mechanical and acoustic emission-assisted wear characterization of equal channel angular pressed (ECAP) low stacking fault energy brass. Tribology International, 2018, vol. 123, pp. 273–285. DOI: 10.1016/j. triboint.2018.03.023. 15. Filippov A.V., Tarasov S.Y., Podgornykh O.A., Fortuna S.V., Shamarin N.N., Vorontsov A.V. Wear, vibration and acoustic emission characterization of sliding friction processes of coarse-grained and ultrafi ne-grained copper. Wear, 2019, vol. 424–425, pp. 78–88. DOI: 10.1016/j.wear.2019.02.014. 16. Filippov A.V., Rubtsov V.E., Tarasov S.Y. Acoustic emission study of surface deterioration in sliding steel contacts. Applied Acoustics, 2017, vol. 117, pp. 106–112. DOI: 10.1016/j.apacoust.2016.11.007. 17. Deng Z., Yin H., Zhang C., Zhang G., Zhang T., Liu Z., Wang H., Qu X. Sintering mechanism of Cu–9Al alloy prepared from elemental powders. Progress in Natural Science: Materials International, 2019, vol. 29 (4), pp. 425–431. DOI: 10.1016/j.pnsc.2019.04.007. 18. Kainuma R., Satoh N., Liu X.J., Ohnuma I., Ishida K. Phase equilibria and Heusler phase stability in the Cu-rich portion of the Cu–Al–Mn system. Journal of Alloys and Compounds, 1998, vol. 266 (1-2), pp. 191–200. DOI: 10.1016/S0925-8388(97)00425-8. 19. Zykova A., Panfi lov A., Chumaevskii A., Vorontsov A., Gurianov D., Savchenko N., Kolubaev E., Tarasov S. Decomposition of β′-martensite in annealing the additively manufactured aluminum bronze. Materials Letters, 2023, vol. 338, p. 134064. DOI: 10.1016/j.matlet.2023.134064. 20. Ge Y., Vronka M., Veřtát P., Karlik M., Hannula S.P., Heczko O. Deformation twinning with diff erent twin-boundary mobility in 2H martensite in Cu–Ni–Al shape memory alloy. Acta Materialia, 2022, vol. 226, p. 117598. DOI: 10.1016/j.actamat.2021.117598. 21. Sedlák P., Seiner H., Landa M., Novák V., Šittner P., Mañosa L. Elastic constants of bcc austenite and 2H orthorhombic martensite in CuAlNi shape memory alloy. Acta Materialia, 2005, vol. 53, pp. 3643–3661. DOI: 10.1016/j.actamat.2005.04.013.

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