ISSN 0430-6252. Physicochemical Mechanics of Materials. 2024.
Volume 60, Issue 1

Investigation of the influence of surface treatment and hardening of 60С2А steel on its volumetric damage by the acoustic test method

Keywords

medium carbon steel, volumetric damage, acoustic emission, magnetoelastic acoustic emission, ultrasonic surface waves method.

Cite as

Skalskyi V. R., Dmytrakh I. M., Pochapskyi Ye. P., Mokryy О. М., Syrotyuk А. М.,
Klym B. P., Kaniuk Yu. I., Romanyshyn I. M., Velykyi P. P., and Dolishniy P. M. Investigation of the influence of surface treatment and hardening of 60С2А steel on its volumetric damage by the acoustic test method. Physicochemical Mechanics of Materials. 2024. 60(1), 018-025.

https://doi.org/10.15407/pcmm2024.01.018

Abstract

The effect of mechanical and thermal treatment of cylindrical products made of medium carbon steel 60S2A on the nucleation and development of volumetric damage in them was considered. Three types of acoustic control methods were used: acoustic emission, magne­toelastic acoustic emission, and ultrasonic surface waves, which controlled the dynamics of its nucleation and development. Research results showed that these methods can provide a satisfactory correlation between them and have the best efficiency/cost ratio.

References

  1. D. Hauserova, J. Dlouhy, and M. Kover, “Pearlitic lamellae spheroidisation during austeniti-zation and subsequent temperature hold,” Archives of Metallurgy and Materials, 62, Is. 1, 201-204 (2017). https://doi.org/10.1515/amm-2017-0028
  2. R. Andreotti, A. Casaroli, I. Colamartino, M. Quercia, M. V. Boniardi, and F. Berto, “Ballistic impacts with bullet splash – load history estimation for.308 bullets vs. hard steel targets,” Materials, 16, Is. 11 (2023). Article number 3990. https://doi.org/10.3390/ma16113990
  3. Jr. C. E. Anderson, W. W. Predebon, and R. R. Karpp, “Computational modeling of explosive-filled cylinders,” Int. J. of Eng. Sci., 23, Is. 12, 1317-1330 (1985). https://doi.org/10.1016/0020-7225(85)90110-7
  4. T. Hiroe, K. Fujiwara, H. Hata, and H. Takahashi, “Deformation and fragmentation behaviour of exploded metal cylinders and the effects of wall materials, configuration, explosive energy and initiated locations,” Int. J. of Impact. Eng., 35, Is. 12, 1578-1586 (2008). https://doi.org/10.1016/j.ijimpeng.2008.07.002
  5. Z. Zhang, F. Huang, Y. Cao, and C. Yan, “A fragments mass distribution scaling relations for fragmenting shells with variable thickness subjected to internal explosive loading,” Int. J. of Impact Eng., 120, 79-94 (2018). https://doi.org/10.1016/j.ijimpeng.2018.05.013
  6. H. Y. Grisaro, D. Benamou, and A. N. Dancygier, “Investigation of blast and fragmentation loading characteristics – field tests,” Eng. Struct., 167, 363-375 (2018). https://doi.org/10.1016/j.engstruct.2018.04.013
  7. V. H. Aranda, F. D. Carazo, L. N. García, D. J. Celentano, and A. J. Tolley, “Effect of cold deformation in quench and tempered medium-carbon steel bars microstructure,” Mater. Sci. and Techn. (United Kingdom), 38, Is. 4, 230-236 (2022). https://doi.org/10.1080/02670836.2022.2037057
  8. V. R. Skalskyi, O. M. Mokryi, O. I. Zvirko, V. I. Kyryliv, I. M. Romanyshyn, and O. V. Mak-symiv, “Estimation of characteristics of nanocrystalline layer using the surface acoustic waves,” Mater. Sci., 59, No. 2, 180-185 (2023). https://doi.org/10.1007/s11003-024-00760-3
  9. O. Marbouh, A. Mazzamurro, O. Bou Matar, Y. Dusch, W. Bekir, D. Laloy, K. Ettihir, A. Tounzi, A. Benabou, and A. Talbi, “Magnetostrictive strain monitoring in Non-Oriented Si-Fe steels using a SAW resonator sensor,” J. of Magnetism and Magnetic Mater., 589 (2024). Article number 171619. https://doi.org/10.1016/j.jmmm.2023.171619
  10. D. Villano, and F. Galliccia, “Innovative technologies for controlled fragmentation warheads,” J. of Appl. Mech., Trans. ASME, 80, Is. 3 (2013). Article number 031704. https://doi.org/10.1115/1.4023341
  11. M. Callahan, D. Sun, M. A. Linne, A. S. Wu, G. H. Campbell, B. Friedman, J. Rodriguez, S. Burke, A. Lodes, K. Hansen, K. Mickelson, R. Wraith, J. J. Nicolino, and H.-S. Park, “Explosive fragmentation of additively manufactured stainless steel,” J. of Appl. Phys., 134, Is. 15 (2023). Article number 155105. https://doi.org/10.1063/5.0170223
  12. J. C. Adams, T. S. Smith, J. B. Bickley, Controlled Fragmentation Warhead, United States Patent 3,566,794, Publ. on 20.10.1992.
  13. L. A. da Silva, S. Johnson, R. Critchley, J. Clements, K. Norris, and C. Stennett, “Experimental fragmentation of pipe bombs with varying case thickness,” Forensic Sci. Int., 306, Is. 3 (2020). Article number 110034. https://doi.org/10.1016/j.forsciint.2019.110034
  14. D. E. Grady, and M. M. Hightower, “Natural Fragmentation of Exploding Cylinders,” in: Shock Wave and High-Strain-Rate Phenomena in Materials, CRC Press (2023).
  15. M. Ofsthun, “When fatigue quality enhancers do not enhance fatigue quality,” Int. J. of Fatigue,25, Is. 9-11, 1223-1228 (2003). https://doi.org/10.1016/S0142-1123(03)00122-1
  16. Z.-X. Shen, H.-D. Huang, Z.-B. Cen, H. Chen, D. Wang, G.-R. Zhu, and S.-Q. Yuan, “Natural fragmentation behavior of steel cylinders with variable charge geometries under detonation loading,” Combustion, Explosion and Shock Waves, 57, Is. 2, 246-255 (2021). https://doi.org/10.1134/S0010508221020143
  17. Z. Nazarchuk, V. Skalskyi, and O. Serhiyenko, Acoustic Emission. Methodology and Application, Cham: Springer Int. Publishing AG (2017). https://doi.org/10.1007/978-3-319-49350-3
  18. M. Lenzen, M. Kraus, and M. Merklein, “Characterization and modelling of sheet material with graded strength for more accurate finite element analysis,” Key Eng. Mat., 926, 1923-1930 (2022). https://doi.org/10.4028/p-vqmjf9
  19. J. Li, X. Cao, R. Chen, C. Zhao, Y. Li, and X. Huang, “Prediction of remaining fatigue life of metal specimens using data-driven method based on acoustic emission signal,” Appl. Acoustics, 211 (2023). Article number 109571. https://doi.org/10.1016/j.apacoust.2023.109571
  20. V. Skalsky, Z. Nazarchuk, O. Stankevych, B. Klym, and T. Selivonchyk, “Effect of operational factors on magnetoacoustic emission of low-carbon steels,” Int. J. of Pressure Vessels and Piping, 199 (2022). Article number 104744. https://doi.org/10.1016/j.ijpvp.2022.104744
  21. H. Zhang, J. Jiao, B. Wu, and C. He, “Theoretical model of magnetoacoustic emission considering the microstructure of ferromagnetic material,” Measurement Sci. and Techn., 34, Is. 12 (2023). Article number 125033. https://doi.org/10.1088/1361-6501/acf516
  22. M. Metzenmacher, A. Beugholt, D. Geier, and T. Becker, “Combined longitudinal and surface acoustic wave analysis for determining small filling levels in curved steel containers,” Sensors, 22, Is. 9 (2022). Article number 3476. https://doi.org/10.3390/s22093476
  23. B. Gerin, E. Pessard, F. Morel, and C. Verdu, “Influence of surface integrity on the fatigue behaviour of a hot-forged and shot-peened C70 steel component,” Mater. Sci. and Eng., A, 686, 121-133 (2017). https://doi.org/10.1016/j.msea.2017.01.041
  24. Z. T. Nazarchuk, V. R. Skal’skyi, and O. M. Stankevych, “A method for the identification of the types of macrofracture of structural materials by the parameters of the wavelet transform of acoustic-emission signals,” Mater. Sci., 49, No. 6, 841-848 (2014). https://doi.org/10.1007/s11003-014-9682-y
  25. V. Skalskyi, Z. Nazarchuk, O. Stankevych, and B. Klym, “Influence of occluded hydrogen on magnetoacoustic emission of low-carbon steels,” Int. J. of Hydrogen Energy, 48, Is. 15, 6146-6156 (2023). https://doi.org/10.1016/j.ijhydene.2022.11.139
  26. K. Liang, S. Angelopoulos, A. Ktena, X. Bi, and E. Hristoforou, “Residual stress distribution monitoring and rehabilitation in ferromagnetic steel rods,” Sensors, 22, Is. 4 (2022). Article number 1491. https://doi.org/10.3390/s22041491
  27. V. Skalskyi, M. Student, O. Mokryy, W. Dudda, Y. Kharchenko, H. Chumalo, and V. Hvozdetskyi, “The use of surface acoustic waves to evaluate of the near-surface layers of metal processed shot peening,” Diagnostyka [in Ukrainian], 22, Is. 3, 51-57. (2021). https://doi.org/10.29354/diag/141232
  28. S. Sampath, H. Liu, Z. W. Tham, Y. F. Chen, and L. Zhang, “Depth profiling of residual stress distribution in surface treated metallic structures using nonlinear ultrasonics,” Ultrasonics, 137 (2024). Article number 107186. https://doi.org/10.1016/j.ultras.2023.107186
  29. R. Kapoor, “Severe Plastic Deformation of Materials,” in: A. K. Tyagi; and S. Banerjee (editors) Materials Under Extreme Conditions: Recent Trends and Future Prospects, Elsevier (2017), pp. 717-754. https://doi.org/10.1016/B978-0-12-801300-7.00020-6
  30. Y. Zhang, K. Zhang, Z. Hu, T. Chen, L. Susmel, and B. Wei, “The synergetic effects of shot peening and laser-shot peening on the microstructural evolution and fatigue performance of a medium carbon steel,” Int. J. of Fatigue, 166 (2023). Article number 107246. https://doi.org/10.1016/j.ijfatigue.2022.107246