DOI: 10.52150/2522-9117-2026-40-008
L. M. Deyneko1, Professor, D. Sc. (Tech.), ORCID 0000-0002-1177-3055
V. L. Pinchuk2,*, ORCID 0000-0001-8257-9252
A. O. Taranenko3, ОRCID 0000-0001-6370-4492
1 Ukrainian State University of Science and Technology
2 Nikopol Professional College, Ukrainian State University of Science and Technology
3 State Enterprise “Research and Design and Technological Institute of Pipe Industry named after Ya. Yu. Osady”
* Corresponding author: v.l.pinchuk@nmt.org.ua
MAIN FACTORS THAT AFFECT THE OPERATIONAL STABILITY
OF THE METAL OF BULLETIN VEST PLATE
Abstract. In the conditions of a full-scale war that continues in Ukraine, the issue of protecting the life and health of citizens has acquired special importance. Military personnel, law enforcement officers, medics, volunteers and citizens working in open spaces risk their lives every day, performing tasks both in the combat zone and practically throughout the country. In these circumstances, reliable personal protective equipment, in particular personal safety equipment (PPE) – bulletproof vests, are vitally necessary to save lives and minimize the risks of injuries and wounds not only from bullets, but to a greater extent from fragments. A bulletproof vest is the most important element of equipment for protecting a person from various critical and fatal injuries. Among various threats, bullet impact is one of the most common threats. Ballistic impact is a very complex mechanical process during which a bullet with a very low mass and high velocity is pushed by powder gases and hits the target. The absorption of energy before the bullet reaches the target and its distribution among ballistic materials are very important aspects for understanding the principle and effect of energy transfer from a bullet or projectile [1]. The aim of the article is to study the influence of the chemical composition of steels, methods of obtaining sheet metal and modes of thermal (for a homogeneous state) and chemical-thermal treatments (for obtaining a heterogeneous state) on the properties of steels selected for research and to select rational steel compositions for the manufacture of protective sheets of body armor and to develop modern treatment modes to ensure 4-5 protection classes according to DSTU 8782:2018, which is one of the key ones in Ukraine in this area [2,8].
Key words: body armor, steel, heat treatment, hardening, tempering, carbonitriding, structure, hardness, penetration.
For citation: Deyneko, L. M., Pinchuk, V. L., & Taranenko, A. O. (2026). Main factors that affect the operational stability of the metal of bulletin vest plate. Fundamental and applied problems of ferrous metallurgy, 40, 122-155. https://doi.org/10.52150/2522-9117-2026-40-008
References
1. Materials and technologies. Armored metallic materials. Vol. 2, Book 1 (A-O). IPM; Scientific opinion, pp 174-178
2. Classification of body armor according to DSTU 8782:2018, NIJ 0101.06. Available from: https://velmet.ua/klasifikatsiya-bronejiletiv-standart-dstu-8782-2018-nij-0101-6.html
3. Ulyana Radostina. Protection class of body armor. DSTU and NATO standards. URL: https://arp.co.ua/klas-zakhystu-bronezhyleta.-standarty-dstu-i-nato (access date 01/12/2025)
4. Armored steel “SPS-43”. Bureau of scientific and technical information “Technique for special services”: [site]. URL: http://www.bnti.ru/des.asp?itm=2390&tbl=08.02.05.&ysclid=l5mi3koutt157231786 (access date: 06/10/2022)
5. Deineko, L. M., Loboda, P. I., Andreyev, A. O., Stolbovy, V. O. et al (2019). Development of parameters of a complex technology for processing the main rigid elements of bulletproof vests. Metallurgy and heat treatment of metals, (3(86)), 37-43
6. Materials and technologies. Armored ceramic materials. Vol. 2, Book 1 (A-O). IPM; Scientific opinion (pp 171-174)
7. Marchenko, O. S. (2010). Prospects for the development of individual armor protection. Modern special equipment, 3(38), 99-106.
8. Bobrova, S., Serhienko, L., Halavska, L., & Shatylo, T. (2023). Analysis of national and international standards in the field of personal armor protection. Herald of Khmelnytskyi National University. Technical Sciences, 329(6), 64-69. https://doi.org/10.31891/2307-5732-2023-329-6-64-69
9. Delle, V. A. (1953). Alloy structural steel. Metallurgizdat
10. Pickering, F. B. (1982). Physical metal science and steel development. Metallurgy
11. Rahstadt, A. G. (1971). Spring steels and alloys. Metallurgy
12. Edneral, K. V. et al. (1968). Physics of metals and metal science, 26(5), 850
13. Rahstadt, A. G. et al. (1958). In Modern alloys and their thermal treatment. Mashgiz
14. Heller, Yu. A. (1975). Tool steels. Metallurgy
15. Kevezy, P., Liverland, J. V. (1965). Low- and medium-alloy high-strength steels. / In the book High-strength steel. Metallurgy, pp 160-185
16. Preist, A., & May, M. (1973). Fracture toughness of a series of experimental high-strength steels/ In the book The fracture toughness of high-strength materials. Metallurgy, pp 161-193
17. Thomas, J. (1977). Phase transformations and microstructure of alloys with high strength and fracture toughness. Possibilities and limitations of their use in the development of alloys. In the book Problems of development of structural alloys. New York, pp 176-204
18. Cottrell, L. M. (1965). Requirements for high-strength steels. In the book High strength steel. Metallurgy, pp 1-9
19. Ryabov, V. V. (2016). Development of wear-resistant steel with a yield strength of 1200-1700 MPa for parts of working bodies of tillage machines. Dissertation. for the competition of a scientist. Ph.D. to 05.16.01
20. Speera, J., Matlocka, D. K., De Coomanb, B. C., & Schrothc, J. G. (2003). Carbon partitioning into austenite after martensite transformation. Acta materialia, 51(9), 2611–2622.
21. Edmondsa, D. V., Hea, K., Rizzob, F. C., & De Coomanc, B. C. (2006). Quenching and partitioning martensite – a novel heat treatment. Materials science and engineering, 438-440, 25–34
22. Clarke, A. J., Speer, J. G., Matlock, D. K., Rizzo, F. C., Edmonds, D. V., et al. (2009). Influence of carbon partitioning kinetics on final austenite fraction during quenching and partitioning. Scripta Materialia, 61, 149-152
23. Zurnadzhi, V. I., Efremenko, V. G., Gavrilova, V. G., et al. (2018). Formation of a heterophase structure in low-alloy steel using innovative technology of thermal processing “Quenching and Partitioning”. Metallophysics and new technologies, (40(12)), 1603-1624
24. Vorobyev, N. Y., Tokovoy, O. K., Mokrinsky, A. V. et al. (2003). Influence of sulfur content and non-metallic inclusions in steel on floc formation in large forgings. Bulletins of higher educational institutions. Black Metallurgy(2), 18-20
25. Shaburov, A. D. (2014). Theoretical and technological aspects of energy-saving anti-flaking treatment of forgings with the use of sudden slow cooling in thermoses, taking into account the effect of capturing the water pipe with traps. Dissertation abstract. on the application form. candidate degree technical Sciences 15.16.01. Chelyabinsk
26. Zakey, V. F., & Parker, E. P. (1980). Successes in the development of iron-based alloys. In the book Problems of development of structural alloys. Metallurgiya, pp 86-112
27. Deineko, L. M. (2000). Development of scientific foundations of strengthening heat treatment of connecting parts of oil and gas pipelines and special-purpose products. Dissertation for the degree of Doctor of Technical Sciences, Dnipropetrovsk
28. Meshkov, Yu. Ya. (1981). Physical foundations of destruction of steel structures. Naukova dumka
29. Meshkov, Yu. Ya. (1988). Physics of steel destruction and topical issues of structural strength. In the book The structure of real metals. Naukova dumka, pp 235-255
30. Meshkov, Yu. Ya. (1999). Problems of viscosity and energy-intensive destruction of structural steels in modern materials science. Metalology and heat treatment of metals, (3), 34-40
31. 225. Meshkov, Yu. Ya., & Pakharenko, G. A. (1989). Metal structure and brittleness of steel parts. Naukova dumka
32. Meshkov, Yu. Ya., & Serditova, T. N. (1985). Ductile fracture criterion for uniaxial tension of low-carbon steels. Physics of Metals, 5(6), 1180-1188
33. Tushinsky, L. I. (1990). Theory and technology of hardening of metallic alloys. Nauka, Siberian Department
34. Firth, K., & Harwood, R. (1973). Fractography and fracture toughness of high-strength 5% Cr-Mo-V steel. In the book Viscosity of destruction of high-strength materials. Metallurgy, pp 1136-151
35. Jaffee, R. I. & Wilcox, B. A. (Eds). (1975). Fundamental aspects of structural alloy design. Battelle institute materials science symposium
36. Goodremon, E. (1966). Special steel. Vol. 2. Metallurgy. (pp 1049 -1076)
37. Prydantsev, M. V., Davydova, L. N., & Tamarina, I. A. (1980). Structural steel. Metallurgy
38. Ilyina, V. P. (1998). The effect of preliminary heat treatment on the microstructure and resistance to brittle fracture of high-strength steels. MyTOM, (8), 5
39. Sadovsky, V. D. (1973). Structural heredity in steel. Metallurgy
40. Televych, R. V., Prikhodko, S. V., & Kocherga, O. V. (1993). Crystallography of the transformation in tempered structural steel. The influence of the degree of preliminary tempering of martensite on structural heredity during rapid heating. Metallophysics, 15(10), 81-89
41. Televych, R. V., & Prikhodko, S. V. (1993). Crystallography of the transformation in tempered structural steel. The influence of the degree of preliminary tempering of martensite on the crystallography of fine-grained austenite complex. Metallophysics, 15(12), 35-41
42. Artinger, I. (1982). Tool steels and their heat treatment. Directory. Metallurgy
Рукопис надійшов до редакції / Received 05.03.2026
Рекомендовано до друку / Accepted 28.05.2026
Опубліковано / Published 30.05.2026


