Technology for Manufacturing Parts from Aluminium Alloys Using Hot Deformation

L. V. Shvets, K. V. Chmykh, O. O. Trukhanska, A. A. Shtuts, M. A. Kolisnyk

Vinnytsia National Agrarian University, 3 Sonyachna Str., UA-21008 Vinnytsia, Ukraine

Received: 13.05.2025; final version - 05.12.2025. Download: PDF

Pressure treatment of metals includes the method developed by us for manufacturing billets from aluminium alloys by hot deformation. There are many methods of hot manufacturing of blanks from various materials; our proposed method of hot deformation of aluminium alloys involves heating not only the metal itself, but also the dies, in which the billet is to be melted for the required part. The essence of the method also consists in the fabrication of different-calibres’ stamps depending on the desired part, which can be both symmetrical and complex ones with an elongated, bent axis, of various configurations, with a minimum of waste. The material consumption factor for this technology is of 0.15−0.3.

Key words: technological process, deformation, heat treatment, deformation drawing, annealing, aluminium alloys, smooth rolls, stamps, stressedly-deformed state, plasticity.

URL: https://mfint.imp.kiev.ua/en/abstract/v48/i01/0035.html

DOI: https://doi.org/10.15407/mfint.48.01.0035

PACS: 06.60.Vz, 46.35.+z, 81.40.Ef, 81.40.Gh, 81.40.Jj, 81.40.Lm, 83.60.-a

Citation: L. V. Shvets, K. V. Chmykh, O. O. Trukhanska, A. A. Shtuts, and M. A. Kolisnyk, Technology for Manufacturing Parts from Aluminium Alloys Using Hot Deformation, Metallofiz. Noveishie Tekhnol., 48, No. 1: 35–50 (2026)


REFERENCES
  1. J. W. Lee, H. W. Son, and S. K. Hyun, Journal of Alloys and Compounds, 774: 1081 (2019).
  2. E. Posviatenko, N. Posviatenko, R. Budyak, L. Shvets, Y. Paladiichuk, P. Aksom, I. Rybak, B. Sabadash, and V. Hryhoryshen, Eastern-European Journal of Enterprise Technologies, 5, No. 12 (95): 48 (2018).
  3. M. Pulupec and L. Shvets, Current Problems of Transport, 2019: 391 (2019).
  4. V. Matvijchuk, A. Shtuts, M. Kolisnyk, I. Kupchuk, and I. Derevenko, Periodica Polytechnica Mechanical Engineering, 66, No. 1: 51 (2022).
  5. A. Shtuts, M. Kolisnyk, A. Vydmysh, O. Voznyak, S. Baraban, and P. Kulakov, Key Engineering Materials, 844: 168 (2020).
  6. V. M. Mykhalevych, M. A. Kolisnyk, and A. A. Shtuts, Metallofiz. Noveishie Tekhnol., 47, No. 1: 57 (2025).
  7. O. Solona, I. Derevenko, and I. Kupchuk, Solid State Phenomena, 291: 110 (2019).
  8. O. L. Haydamak, Metallofiz. Noveishie Tekhnol., 45, No. 10: 1189 (2023).
  9. O. L. Haydamak and V. F. Hraniak, Metallofiz. Noveishie Tekhnol., 45, No. 12: 1485 (2023).
  10. O. Voznyak, Y. Polievoda, I. Kupchuk, O. Trukhanska, L. Shvets, and M. Zamrii, Przeglad Elektrotechniczny, 99, No. 11: 192 (2023).
  11. J. Ren, R. C. Wang, Y. Feng, C. Q. Peng, and Z. Y. Cai, Vacuum, 161: 434 (2019).
  12. E. B. Aliev, V. M. Bandura, V. M. Pryshliak, V. M. Yaropud, and O. O. Trukhanska, INMATEH–Agricultural Engineering, 54, No. 1: 95 (2018).
  13. V. M. Myhalevych, A. A. Shtuts, M. A. Kolisnyk, I. А. Zozulyak, and A. P. Jelenich, Metallofiz. Noveishie Tekhnol., 47, No. 6: 647 (2025).
  14. P. J. Hao, A. He, and W. Q. Sun, Archives of Civil and Mechanical Engineering, 18: 245 (2018).
  15. D. F. Li, D. Z. Zhang, S. D. Liu, Z. J. Shan, X. M. Zhang, Q. Wang, and S. Q. Han, Transactions of Nonferrous Metals Society of China, 26: 1491 (2016).