Obrabotka Metallov 2026 Vol. 28 No. 2

OBRABOTKAMETALLOV Vol. 28 No. 2 2026 349 MATERIAL SCIENCE 19. Bataev I.A., Tanaka S., Zhou Q., Lazurenko D.V., Junior A.M.J., BataevA.A., Hokamoto K., Mori A., Chen P. Towards better understanding of explosive welding by combination of numerical simulation and experimental study. Materials and Design, 2019, vol. 169, art. 107649. DOI: 10.1016/j.matdes.2019.107649. 20. Bataev I.A. Formirovanie struktury svarennykh vzryvom materialov: eksperimental’nye issledovaniya i chislennoe modelirovanie [Structure of explosively welded materials: experimental study and numerical simulation]. Obrabotka metallov (tekhnologiya, oborudovanie, instrumenty) = Metal Working and Material Science, 2017, vol. 19, no. 4, pp. 55–67. DOI: 10.17212/1994-6309-2017-4-55-67. 21. Kiselev S.P., Kiselev V.P., Kiselev N.P., Zaikovskii V.N. O modeli volnoobrazovaniya pri kosom, simmetrichnom soudarenii alyuminievykh plastin [On the model of wave formation during oblique, symmetrical collision of aluminum plates]. Fizika goreniya i vzryva = Combustion, Explosion, and Shock Waves, 2025. DOI: 10.15372/FGV2025.9600. (In Russian). 22. Bataev I., Mori A., Hokamoto K. Behavior of materials under extremely high-velocity oblique impact. Explosion, Shock-wave and High-strain-rate Phenomena of Advanced Materials. Elsevier, 2021, pp. 71–92. DOI: 10.1016/B978-0-12-821665-1.00006-7. 23. Tanaka K. Numerical studies on the explosive welding by smoothed particle hydrodynamics (SPH). Shock Compression of Condensed Matter – 2007: Proceedings of the American Physical Society Topical Conference. AIP Conference Proceedings, vol. 955. Melville, NY, AIP, 2008, pp. 1301–1304. DOI: 10.1063/1.2832962. 24. Chen X., Inao D., Tanaka S., Li X., Bataev I.A., Hokamoto K. Comparison of explosive welding of pure titanium/SUS 304 austenitic stainless steel and pure titanium/SUS 821L1 duplex stainless steel. Transactions of Nonferrous Metals Society of China, 2021, vol. 31 (9), pp. 2687–2702. DOI: 10.1016/S1003-6326(21)65685-6. 25. Wang X., Zheng Y., Liu H., Shen Z., Hu Y., Li W., Gao Y., Guo C. Numerical study of the mechanism of explosive/impact welding using Smoothed Particle Hydrodynamics method. Materials and Design, 2012, vol. 35, pp. 210–219. DOI: 10.1016/j.matdes.2011.09.047. 26. Crossland B. Explosive welding of metals and its application. Oxford, Clarendon Press, 1982. 256 p. ISBN 0-19-859119-5. 27. Yang M., Chen D., Zhou H., Xu J., Ma H., Shen Z., Zhang B., Tian J. Experimental and numerical investigation of microstructure and evolution of TiNi alloy/Q235 steel interfaces prepared by explosive welding. Journal of Materials Research and Technology, 2021, vol. 15, pp. 5803–5813. DOI: 10.1016/j.jmrt.2021.11.044. 28. Zhang B., Ma H., Xu J., Li L., Shen Z., Ding L., Tian J. Investigations on the microstructure evolution and mechanical properties of explosive welded ODS-Cu/316L stainless steel composite. Fusion Engineering and Design, 2022, vol. 179, art. 113142. DOI: 10.1016/j.fusengdes.2022.113142. 29. Ma Y., Wang T., Wang G., Fang X., Chu C. Numerical and experimental studies of the interface characteristics and wave formation mechanism of Hastelloy/stainless steel explosive welding composite plate. Materials Today Communications, 2023, vol. 36, art. 106880. DOI: 10.1016/j.mtcomm.2023.106880. 30. Wu X., Shi C., Feng K., Gao L., Li W., Qian K. Experimental and numerical approach to titanium-aluminum explosive welding. Materials Research Express, 2021, vol. 8, art. 096503. DOI: 10.1088/2053-1591/ac2017. 31. Campanella D., Buff a G., Fratini L. A two steps Lagrangian–Eulerian numerical model for the simulation of explosive welding of three dissimilar materials joints. CIRP Journal of Manufacturing Science and Technology, 2021, vol. 35, pp. 541–549. DOI: 10.1016/j.cirpj.2021.08.010. 32. Ryabinkina P.A., Emurlaeva Yu.Yu., Bataev I.A., Tanaka S. Neodnorodnost’ plasticheskogo techeniya, soputstvuyushchaya protsessam vysokoskorostnogo nagruzheniya metallicheskikh materialov [Inhomogeneity of plastic fl ow accompanying rapid loading of metallic materials]. Metallovedenie i termicheskaya obrabotka metallov = Metal Science and Heat Treatment, 2021, no. 12, pp. 41–47. DOI: 10.30906/mitom.2021.12.41-47. (In Russian). 33. Hokamoto K., Ujimoto Y., Fujita M. Basic characteristics of the explosive welding technique using underwater shock wave and its possibilities. Materials Transactions, 2004, vol. 45 (9), pp. 2897–2901. DOI: 10.2320/ matertrans.45.2897. 34. Akbari Mousavi A.A., Al-hassani S. Numerical and experimental studies of the mechanism of the wavy interface formations in explosive/impact welding. Journal of the Mechanics and Physics of Solids, 2005, vol. 53, pp. 2501–2528. DOI: 10.1016/j.jmps.2005.06.001. 35. Wu X. , Shi Ch., Gao L., Li W., Feng K. Study on parameters and wave growth mechanism of explosive welding based on SPH-FEM. Rare Metal Materials and Engineering, 2023, vol. 52 (4), pp. 1272–1282. 36. Besshaposhnikov Yu.P., Grinberg B.A., Pushkin M.S., Inozemtsev A.V., Patselov A.M. Optimizatsiya parametrov svarki vzryvom i strukturnye osobennosti kompozitov stal’ – tolstolistovoi alyuminii [Optimization of explosive welding parameters and structural features of steel–thick aluminum composites]. Fundamental’nye

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