Obrabotka Metallov 2026 Vol. 28 No. 2

ОБРАБОТКА МЕТАЛЛОВ Том 28 № 2 2026 66 ТЕХНОЛОГИЯ 25. Augmentation of weld penetration by fl ux assisted TIG welding and its distinct variants for oxygen free copper / H. Rana, V. Badheka, P. Patel, V. Patel, W. Li, J. Andersson // Journal of Materials Research and Technology. – 2021. – Vol. 10. – P. 138–151. – DOI: 10.1016/j. jmrt.2020.12.009. 26. Experimental investigations on tensile strength of fl ux bounded TIG welds of AA2219-T87 aluminum alloy / A.V.S. Babu, P.K. Giridharan, P.R. Narayanan, S.V.S. Narayana Murty, V.M.J. Sharma // Journal of Advanced Manufacturing Systems. – 2014. – Vol. 13 (2). – P. 103–112. DOI: 10.1142/S0219686714500073. 27. Jayakrishnan S., Chakravarthy P., Muhammed Rijas A. Eff ect of fl ux gap and particle size on the depth of penetration in FBTIG welding of aluminium // Transactions of the Indian Institute of Metals. – 2017. – Vol. 70 (5). – P. 1329–1335. – DOI: 10.1007/s12666016-0929-1. 28. Processing and application of ultra disperse wastes of silicon production in construction / V.V. Kondratiev, A.I. Karlina, E.A. Guseva, M.V. Konstantinova, A.A. Kleshnin // IOP Conference Series: Materials Science and Engineering. – 2018. – Vol. 463 (3). – P. 032068. – DOI: 10.1088/1757-899X/463/3/032068. 29. Flux zoned activating TIG welding of aluminum alloys / H. Yong, S. Feng, F. Ding, L. Tao // Welding and Joining-Harbin. – 2007. – Vol. 5. – P. 47–49. 30. Martyushev N.V., Skeeba V.Yu. The method of quantitative automatic metallographic analysis // Journal of Physics: Conference Series. – 2017. – Vol. 803 (1). – P. 012094. – DOI: 10.1088/1742-6596/803/1/012094. 31. Воропай Н.М., Лебедева О.В., Бойко В.П. Физические свойства сварочных шлаков на основе TiO2, образующихся при плавлении активированных проволок // Автоматическая сварка. – 1989. – № 3. – С. 19–23. 32. Zhang R.H., Pan J.L., Katayama S. The mechanism of penetration increase in A-TIG welding // Frontiers of Materials Science. – 2011. – Vol. 5. – P. 109– 118. – DOI: 10.1007/s11706-011-0125-5. 33. Singh S.R., Khanna P. A-TIG (activated fl ux tungsten inert gas) welding: – A review // Materials Today: Proceedings. – 2021. – Vol. 44. – P. 808–820. – DOI: 10.1016/j.matpr.2020.10.712. 34. Research advances in high-energy TIG arc welding / H. Wu, Y. Chang, Q. Mei, D. Liu // The International Journal of Advanced Manufacturing Technology. – 2019. – Vol. 104. – P. 391–410. – DOI: 10.1007/ s00170-019-03918-5. 35. Balanovskiy A.E. Digital visualisation of the process of heating and melting of metal in arc discharge with a non-consumable electrode // Welding International. – 2017. – Vol. 31 (6). – P. 467–476. – DOI: 10.1080/0 9507116.2016.1268765. 36. Eff ect of nano TiO2 fl ux on depth of penetration and mechanical properties of TIG-welded SA516 Grade 70 steel joints – An experimental investigation / R. Narayanan, K. Rameshkumar, A. Sumesh, B. Shankar, D.T. Thekkuden // Metals. – 2025. – Vol. 15 (4). – P. 399. – DOI: 10.3390/met15040399. 37. Tseng K.H., Lin P.Y. UNS S31603 stainless steel tungsten inert gas welds made with microparticle and nanoparticle oxides // Materials. – 2014. – Vol. 7 (6). – P. 4755–4772. – DOI: 10.3390/ma7064755. 38. Infl uence of welding regimes on structure and properties of steel 12KH18N10T weld metal in diff erent spatial positions / R.A. Mamadaliev, P.V. Bakhmatov, N.V. Martyushev, V.Y. Skeeba, A.I. Karlina // Metallurgist. – 2022. – Vol. 65 (11–12). – P. 1255–1264. – DOI: 10.1007/s11015-022-01271-9. 39. Study of mechanical properties of C-Mn-Si composition metal after wire-arc additive manufacturing (WAAM) / A.E. Balanovskiy, N.A. Astafyeva, V.V. Kondratyev, A.I. Karlina // CIS Iron and Steel Review. – 2021. – Vol. 22. – P. 66–71. – DOI: 10.17580/ cisisr.2021.02.12. 40. Study of wear of an alloyed layer with chromium carbide particles after plasma melting / A.I. Karlina, Y.I. Karlina, V.V. Kondratiev, R.V. Kononenko, A.D. Breki // Crystals. – 2023. – Vol. 13 (12). – P. 1696. – DOI: 10.3390/cryst13121696. 41. Comparative evaluation of austenite grain in high-strength rail steel during welding, thermal processing and plasma surface hardening / A.D. Kolosov, V.E. Gozbenko, M.G. Shtayger, S.K. Kargapoltsev, A.E. Balanovskiy, A.I. Karlina, A.V. Sivtsov, S.A. Nebogin // IOP Conference Series: Materials Science and Engineering. – 2019. – Vol. 560. – P. 012185. – DOI: 10.1088/1757-899X/560/1/012185. 42. Strengthening of metallurgical equipment parts by plasma surfacing in nitrogen atmosphere / N.N. Malushin, R.A. Gizatulin, N.V. Martyushev, D.V. Valuev, A.I. Karlina, A.P. Kovalev // Metallurgist. – 2022. – Vol. 65 (11–12). – P. 1468–1475. – DOI: 10.1007/ s11015-022-01292-4. 43. Alloying and modifi cation of iron-carbon melts with natural and man-made materials / O.I. Nokhrina, R.A. Gizatulin, M.A. Golodova, I.E. Proshunin, D.V. Valuev, N.V. Martyushev, A.I. Karlina // Metallurgist. – 2022. – Vol. 65 (11–12). – P. 1429–1448. – DOI: 10.1007/ s11015-022-01289-z. 44. Change in the properties of rail steels during operation and reutilization of rails / K. Yelemessov, D. Baskanbayeva, N.V. Martyushev, V.Y. Skeeba, V.E. Gozbenko, A.I. Karlina // Metals. – 2023. – Vol. 13. – P. 1043. – DOI: 10.3390/met13061043. 45. Methods and technologies for ensuring the reliabilityof excitationof synchronous generators of small

RkJQdWJsaXNoZXIy MTk0ODM1