[1]
G. N. Sokolov, I. V. Zorin, A. A. Artem'ev, V. B. Litvinenko-Ar'kov, Yu. N. Dubtsov, V. I. Lysak, V. O. Kharlamov, A. V. Samokhin, Yu. V. Tsvetkov, Structure Formation and Properties of Weld Alloys with Addition of Refractory Compound Nanoparticles, Inorg. Mater. Appl. Res. 6 (3) (2015).
DOI: 10.1134/s2075113315030119
Google Scholar
[2]
A. A. Artem'ev, G. N. Sokolov, V. I. Lysak, I. V. Zorin, Yu. N. Dubtsov, S. N Tsurikhin, Wear-Resistant Coatings Reinforced with TiB2 Micro-Particles and TiCN Nano-Sized Particles, Key Eng. Mater. 685 (2016) 505–510.
DOI: 10.4028/www.scientific.net/kem.685.505
Google Scholar
[3]
A. A. Artem'ev, G. N. Sokolov, V. I. Lysak, Effect of microparticles of titanium diboride and nanoparticles of titanium carbonitride on the structure and properties of deposited metal, Metal Science and Heat Treatment 53(11–12) (2012) 603-607.
DOI: 10.1007/s11041-012-9442-2
Google Scholar
[4]
M. S. Kaufman, V. Ya. Spevak, L. P. Petukhova, Surfacing Production Abroad, Technology, Organization and Mechanization of the Welding Production 6 (1971) 30–43.
Google Scholar
[5]
M. Ramakrishnan, V. Muthupandi, Application of Submerged Arc Welding Technology with Cold Wire Addition for Drum Shell Long Seam Butt Welds of Pressure Vessel Components, Int. J. Adv. Manuf. Technol. 65 (5) (2013) 945–956.
DOI: 10.1007/s00170-012-4230-0
Google Scholar
[6]
K. Kurishita, R. Matsubara, J. Shiraishi [et al. ], Solution Hardening of Titanium Carbide by Molybdenum, Trans. Jap. Inst. Met. 27 (11) (1986) 858–869.
DOI: 10.2320/matertrans1960.27.858
Google Scholar
[7]
V. A. Zhilyaev, E. I. Patrakov, Influence of the Production Method of TiC-Ni-Mo Alloy on the Formation of its Content and Microstructure, Powder Metallurgy 8 (1989) 47–53.
DOI: 10.1007/bf00794579
Google Scholar
[8]
J. H. Jang, C. -H. Lee, Y. -U. Heo, D. -W. Suh, Stability of (Ti, M)C (M = Nb, V, Mo and W) Carbide in Steels using First-Principles Calculations, Acta Materialia, 60 (2012) 208–217.
DOI: 10.1016/j.actamat.2011.09.051
Google Scholar