Study of the Manufacturability of Production and Properties of Welding Wire from Alloy 1580

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The results of studies on the production of welding wires with a diameter of 2.5 and 3.3 mm from alloy 1580 are presented. To compare the manufacturability of the processing, various methods were used to obtain billets for drawing with a diameter of 8-12 mm: the traditional method of direct hot extruding (discrete); combined rolling-extruding method; and ingotless rolling-extruding method (continuous). The developed modes of bar rolling, drawing and annealing made it possible to obtain prototypes of wire in laboratory and industrial conditions. It was found that alloy 1580 is highly manufacturable both with the traditional method of pressure treatment (extruding) and with combined rolling-extruding methods. It was revealed that the application of all methods makes it possible to obtain billets with the level of mechanical properties necessary for further multi-operation processing. Based on the results of research obtained in laboratory conditions, rational drawing modes for industrial wire production have been developed. As a result of bay drawing, pilot batches of welding wire with a diameter of 3.26 and 2.47 mm from alloy 1580 were obtained, which was successfully used for welding sheet metal.

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September 2020

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[1] Yu.A. Filatov, Al – Mg – Sc systems for welded and brazed constructions, Tsvetnye Metally. 1 (2014) 80-86.

Google Scholar

[2] N.A. Belov, Phase composition of industrial and promising aluminum alloys, Ed. House MISiS, Moscow, (2010).

Google Scholar

[3] G.M. Rusakov, A.G. Illarionov, Y.N. Loginov, M.L. Lobanov, A.A. Redikul'tsev, Interrelation of Crystallographic Orientations of Grains in Aluminum Alloy AMg6 under Hot Deformation and Recrystallization, Metal Science and Heat Treatment. 56(11-12) (2015) 650-655.

DOI: 10.1007/s11041-015-9816-3

Google Scholar

[4] P.H.R. Pereiraa, Y.Ch. Wang, Yi Huang, T.G. Langdon, Influence of grain size on the flow properties of an Al-Mg-Sc alloy over seven orders of magnitude of strain rate, Materials Science & Engineering. А685 (2017) 367-376.

DOI: 10.1016/j.msea.2017.01.020

Google Scholar

[5] S. Mondol, T. Alamb, R. Banerjee, S. Kumar, K. Chattopadhyay, Development of a high temperature high strength Al alloy by addition of small amounts of Sc and Mg to 2219 alloy, Materials Science & Engineering. А687 (2017) 221-231.

DOI: 10.1016/j.msea.2017.01.037

Google Scholar

[6] S. Malopheyev, V. Kulitskiy, R. Kaibyshev, Deformation structures and strengthening mechanisms in an Al-Mg-Sc-Zr alloy, Journal of Alloys and Compounds. 698 (2017) 957-966.

DOI: 10.1016/j.jallcom.2016.12.289

Google Scholar

[7] M. Li, Q. Pan, Y. Shi, X. Sun, H. Xiang, High strain rate superplasticity in an Al–Mg–Sc–Zr alloy processed via simple rolling, Materials Science & Engineering. А687 (2017) 298-305.

DOI: 10.1016/j.msea.2017.01.091

Google Scholar

[8] Yu. Buranova, V. Kulitskiy, M. Peterlechner, A. Mogucheva, R. Kaibyshev, S. Divinski, G. Wilde, Al3(Sc, Zr) - based precipitates in AleMg alloy: Effect of severe deformation, Acta Materialia. 124 (2017) 210-224.

DOI: 10.1016/j.actamat.2016.10.064

Google Scholar

[9] D. Zhemchuzhnikova, R. Kaibyshev Effect of Grain Size on Cryogenic Mechanical Properties of an Al-Mg-Sc Alloy. Advanced Materials Research. 922 (2014) 862-867.

DOI: 10.4028/www.scientific.net/amr.922.862

Google Scholar

[10] E.A. Marquis, E.A. Seidman, Nanoscale structural evolution of Al3Sc precipitates in Al (Sc) alloys, Acta Materialia. 49 (2001) 1909-1919.

DOI: 10.1016/s1359-6454(01)00116-1

Google Scholar

[11] C.B. Fuller, D.N. Seidman, Temporal evolution of the nanostructure of Al(Sc,Zr) alloys: Part II coarsening of Al3(Sc1−xZrx) precipitates. ler, Acta Materialia. 53(20) (2005) 5415-5428.

DOI: 10.1016/j.actamat.2005.08.015

Google Scholar

[12] J. Ryset, N. Ryum, Scandium in aluminum alloys, International Materials Reviews. 50(1) 2005 19-44.

Google Scholar

[13] A.M. Drits, V.V. Ovchinnikov, Aluminum alloy welding, Publishing House «Ore and Metals», Moscow, (2017).

Google Scholar

[14] V.V. Yashin, V.Yu. Aryshenskiy, I.A. Latushkin, V.S. Tepterev, Substantiation of a manufacturing technology of flat rolled products from Al – Mg – Sc based alloys for the aerospace industry, Tsvetnye metally. 7 (2018) 75-82.

DOI: 10.17580/tsm.2018.07.12

Google Scholar

[15] A.V. Bronz, V.I. Efremov, A.D. Plotnikov, A.G. Chernyavskiy. Alloy Alloy 1570C — material for pressurized structures of advanced reusable vehicles of RSC Energia,, Kosmicheskaya tekhnika i tekhnologii. 4(7) (2014) 62-67.

Google Scholar

[16] Yu.A. Filatov, A.D. Plotnikov. Structure and properties of deformed semi-finished products from aluminum alloy 01570C of the Al – Mg – Sc system for the RSC Energia, product (in Russian), Tekhnologiya legkikh splavov. 2 (2011) 15-26.

Google Scholar

[17] S.B. Sidelnikov, O.V. Yakiv'yuk, V.N. Baranov, E.Yu. Zenkin, I.N. Dovzhenko, Development, modeling and research of technology for producing longish deformed semi-finished products from aluminum-magnesium alloys with low scandium contents. Izvestiya Vuzov. Tsvetnaya Metallurgiya (Universities' Proceedings Non-Ferrous Metallurgy). 6 (2019) 51-59.

DOI: 10.17073/0021-3438-2019-6-51-59

Google Scholar

[18] V. Baranov, S. Sidelnikov, E. Zenkin, O. Yakivyuk, Physical Modeling Technological Regimes of Production Deformed Semi-Finished Products from Experimental Aluminium Alloys Alloyed by Scandium, Materials Science Forum. 918 (2018) 54-62.

DOI: 10.4028/www.scientific.net/msf.918.54

Google Scholar

[19] N.N. Dovzhenko, S.V. Rushits, I.N. Dovzhenko, P.O. Yuryev, Understanding the behaviour of aluminium alloy Р-1580 sparingly doped with scandium under hot deformation, Tsvetnye Metally. 9 (2019) 80-86.

DOI: 10.17580/tsm.2019.09.13

Google Scholar

[20] N. Dovzhenko, S. Sidelnikov, I. Dovzhenko, R. Galiev, New Technology of Combined Machining of Aluminium Alloys. Key Engineering Materials. 746 (2017) 29-35.

DOI: 10.4028/www.scientific.net/kem.746.29

Google Scholar

[21] S.B. Sidelnikov, N.N. Dovzhenko, N.N. Zagirov, Combined and complex methods of machining non-ferrous metals and alloys, M.: MAKS PRESS, Moscow, (2005).

Google Scholar