Structural and Phase Transformations in Ti-B4C System Formed when Melting the Composition Film/Substrate by an Intense Electron Beam

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The "(Ti) film/(В4С ceramics) substrate" system was investigated after irradiation by an intense pulse electron beam. It was found that the multiphase structure crystallized on the eutectic reaction was formed in the surface layer of the film/substrate system. It was shown that high-speed metallization of the surface layer in the В4С ceramics leads to increase of its fracture toughness.

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76-80

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September 2016

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] Yu.K. Altudov, А.G. Garitsyn, Laser microtechnologies and their applications in electronics, Moscow, (2001).

Google Scholar

[2] S. А. Gyngazov, А. P. Surzhikov, Т.S. Franguljyan. RF. Patent 2 337 894. (2007).

Google Scholar

[3] Т. Yu. Kobzareva, V. Е. Gromov, Yu. F. Ivanov et al. Surface hardening alloy VT6 by electroexplosion alloying with boron carbide and by electron beam treatment, Metal working. 69 (2015) 102-110.

Google Scholar

[4] А.P. Burmakov, V. N. Kuleshov. High-adhesive metallization of ceramics by films of titanium dioxide changing in compound thickness, Bulletin of Belarusian State University. Physics, 1 (2007) 24-28.

Google Scholar

[5] N.N. Коval', Yu.F. Ivanov, Nanostructuring of surfaces of metalloceramic and ceramic materials by electron-beams. Russian Physics Journal. 5 (2008) 60-70.

Google Scholar

[6] А.B. Belov, О. А Bytsenko, A. V. Krainikov, et al. High-Current Pulse Electron Beams for Aircraft Engine Engineering, under the general editorship of A.S. Novikov, V.A. Shulov, V. I. Engelko, Moscow, (2012).

Google Scholar

[7] V. Rotshtein, Yu. Ivanov, A. Markov, Surface treatment of materials with low-energy, high-current electron beams. Charter 6 in Book Materials surface processing by directed energy techniques,. Ed. by Y. Pauleau: Elsevier, 2006, pp.205-240.

DOI: 10.1016/b978-008044496-3/50007-1

Google Scholar

[8] V.N. Devyatkov, N.N. Koval, P.M. Schani., V.P. Grigoryev, T.В. Koval, Laser and Particle Beams, 21 (2003) 243-248.

DOI: 10.1017/s026303460321212x

Google Scholar

[9] G.E. Ozur, D.I. Proskurovsky, K.V. Karlik, Proc. 7th Intern. Conf. on Modification of Materials with Particle Beams and Plasma Flows, Tomsk, 2004, pp.20-23.

Google Scholar

[10] V.V. Shugurov, A.A. Kalushevich, N.N. Koval, V.V. Denisov, V.V. Yakovlev, Automated vacuum ion-plasma installation. Russian Physics Journal. 12/3 (2012) 118-122.

Google Scholar

[11] Yu.F. Ivanov, N.N. Koval, V.I. Vlasov, A. D Teresov, E.A. Petrikova, V.V. Shugurov, O.V. Ivanova, I.A. Ikonnikova, A.A. Klopotov, The structure of the surface alloy formed as a result of high-speed melting of the (TiCu)film /(Al) substrate system, High Temperature Material Processes, 17(4) (2013).

DOI: 10.1615/hightempmatproc.2015014039

Google Scholar

[12] Yu. Ivanov, О. Krysina, E. Petrikova, О. Ivanova, I. Ikonnikova, M. Rygina, Numerical Simulation of Thermal Processes Involved in Surface Alloying of Aluminum with Titanium by an Intense Pulsed Electron Beam, Key Engineering Materials. 683 (2016).

DOI: 10.4028/www.scientific.net/kem.683.569

Google Scholar

[13] Yu.B. Kuz'ma and N.F. Chaban, Binary and Ternary Systems Containing Boron, Metallurgiya, Moscow, (1990).

Google Scholar

[14] F. Peter, Jan Vřešťál Rogl, Tanaka Takaho, Takenouchi Satoshi, The B-rich side of the B-C phase diagram, Calphad. 44 (2014) 3-9.

DOI: 10.1016/j.calphad.2013.07.016

Google Scholar

[15] Xiaoyan Ma, Changrong Li, Zhenmin Du, Weijing Zhang, Thermodynamic assessment of the Ti–B system, Journal of Alloys and Compounds. 370 (2004) 149–158.

DOI: 10.1016/j.jallcom.2003.09.017

Google Scholar