Kinetics of the Formation of Bimetallic Compounds and the Distribution of Energy Components in the Explosion Welding Process

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The article is devoted to the study of the kinetics of packet formation and energy distribution in the process of explosion welding. The results of experimental determination of the components of the total energy balance during explosion welding and their influence on obtaining a given part profile are presented. The kinetics of the package motion during explosion welding with simultaneous formation of a bimetallic billet with a cylindrical profile is shown.

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Materials Science Forum (Volume 1052)

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393-398

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February 2022

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© 2022 Trans Tech Publications Ltd. All Rights Reserved

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[1] V.G. Petushkov, V.A. Simonov, V.S. Sedikh, Y.I. Fadeenko, Explosion Welding Criteria, Harwood Acad. Publ., Kiev, (1996).

Google Scholar

[2] S.A. Akbari-Mousavi, L.M. Barrett, S. Al-Hassani, Explosive welding of metalplates, Journal of Materials Processing Technology. 202 (2008) 224-239.

DOI: 10.1016/j.jmatprotec.2007.09.028

Google Scholar

[3] V.I. Lysak, S.V. Kuzmin, Energy balance during explosive welding, Journal of Materials Processing Technology. 222 (2015) 356-364.

DOI: 10.1016/j.jmatprotec.2015.03.024

Google Scholar

[4] I.D. Zakharenko, Explosive Welding of Metals, Navuka i Tehnika, Minsk, (1990).

Google Scholar

[5] B. Crossland, Explosive Welding of Metals and its Application, Clarendon Press, Oxford, (1982).

Google Scholar

[6] T.Z. Blazinski, Explosive Welding, Forming and Compaction, Appl. Sci. publ., London, New York, (1983).

Google Scholar

[7] I.V. Yakovlev, V.V. Pai, G.E. Kuz'min, Approximate estimate of loading parameters in composites for the case of strong waves, in: Shock Compression of Condensed Matter-1995, AIP Press, New York, 1996, 677-680.

DOI: 10.1063/1.50614

Google Scholar

[8] X. Wang, Y. Zheng, H. Liu, Z. Shen, Numerical study of the mechanism of explosive impact welding using smoothed particle hydrodynamics method, Materials and Design. 35 (2012) 210-219.

DOI: 10.1016/j.matdes.2011.09.047

Google Scholar

[9] P. Manikandan, K. Hokamoto, K. Raghukandan, A. Chiba, A. A. Deribas, The effect of experimental parameters on the explosive welding of Ti and stainless steel, Science and Technology of Energetic Materials. 66 (2005) 370-374.

DOI: 10.2320/matertrans.47.2049

Google Scholar

[10] V.I. Kuz'min, V.I. Lysak, E.V. Kuz'min, Regularities in bimetal joint formation at explosion welding with simultaneous stamping, Materials Science Forum. 989 (2020) 733-738.

DOI: 10.4028/www.scientific.net/msf.989.733

Google Scholar

[11] I.A. Bataev, S. Tanaka, Q. Zhou, Towards better understanding of explosive welding by combination of numerical simulation and experimental study, Materials and Design. 169 (2019) 107649.

DOI: 10.1016/j.matdes.2019.107649

Google Scholar

[12] T. Fiedler, M. Borovinšek, K. Hokamoto, M. Vesenjak, High-performance thermal capacitors made by explosion forming, International Journal of Heat and Mass Transfer. 83 (2015) 366-371.

DOI: 10.1016/j.ijheatmasstransfer.2014.12.025

Google Scholar

[13] B.S. Zlobin, V.V Silvestrov, A.A. Shtertser, A.V. Plastinin, V.V. Kiselev, Enhancement of explosive welding possibilities by the use of emulsion explosive, Archives of Metallurgy and Materials. 59 (2014) 1587-1592.

DOI: 10.2478/amm-2014-0269

Google Scholar

[14] V.I. Kuz'min, V.I. Lysak, E.V. Kuz'min, Investigation of the influence of dynamic parameters on the formation, structure and properties of bimetallic compounds during explosion welding with simultaneous stamping, IOP Conf. Series: Materials Science and Engineering. 969 (2020) 012090.

DOI: 10.1088/1757-899x/969/1/012090

Google Scholar

[15] F. Findik, Recent developments in explosive welding, Materials and Design. 32 (2011) 1081-1093.

DOI: 10.1016/j.matdes.2010.10.017

Google Scholar

[16] P.P. Lepikhin, V.A. Romashchenko, Y.N. Babich, O.S. Beiner, V.F. Demenko, Evaluation of the dynamic strength of cylindrical and conic matrices of finite length for stamping by high explosives, Strength of Materials. 37 (2005) 146-158.

DOI: 10.1007/s11223-005-0027-9

Google Scholar

[17] D. Mynors, B. Zhang, Applications and capabilities of explosive forming, Journal of Materials Processing Technology. 125 (2002) 1-25.

DOI: 10.1016/s0924-0136(02)00413-2

Google Scholar

[18] V.Y. Zorik, Theoretical grounds of designing technological system for manufacture of complex sheet parts by explosive stamping, Kuznechno-Shtampovochnoe Proizvodstvo (Obrabotka Metallov Davleniem). 11 (2002) 29-35.

Google Scholar

[19] V.I. Kuz'min, A.N. Kriventsov, A.V. Baluev, Kinetics of flight and determination of the velocity of movement and collision of a packet in explosion welding, Welding International. 14 (2000) 661-664.

DOI: 10.1080/09507110009549247

Google Scholar

[20] V.I. Lysak, S.V Kuzmin, B.E. Paton (Eds.), Explosive Welding of Metal Layered Composite Materials, E.O. Paton Electric Welding Institute of the NASU, Kiev, (2003).

DOI: 10.37434/tpwj2020.04.02

Google Scholar

[21] B. Gulenc, Investigation of interface properties and weldability of aluminum and copper plates by explosive welding method, Materials and Design. 29 (2008) 275-278.

DOI: 10.1016/j.matdes.2006.11.001

Google Scholar

[22] V.I. Kuz'min, V.I. Lysak, A.N. Kriventsov, M.A. Iakovlev, Critical conditions of the formation and failure of welded joints in explosive welding, Welding International. 18 (2004) 223-227.

DOI: 10.1533/wint.2004.3270

Google Scholar

[23] Y.P. Trykov, V.N. Arisova, L. M. Gurevich, A. F. Trudov, D. N. Gurulev, Effect of plastic deformation on the structure and properties of laminated composite materials, Welding International. 16 (2002) 890-893.

DOI: 10.1080/09507110209549632

Google Scholar