The Change in the Thin Structure and Mechanical Properties of Aluminum Alloys at Intensive Plastic Deformation

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Electron microscopy and x-ray analysis and mechanical testing have been investigated the influence of severe plastic deformation on structure and mechanical properties of aluminum alloys. It is established that in the initial state in the alloy AMC has a high density of chaotically distributed dislocations with a density of 5-10*109 сm-2. It is shown that microdiffraction paintings in alloy AMC in the bulk of grains are observed uniformly distributed particles of the second phase. It is established that in the initial state in the alloy AMG6 there is a high density of chaotically distributed dislocations with a density of 2-6 *1010 сm-2. Determined that after ECAP the dislocation structure of alloys AMG6, AMC and changes: formed dislocation networks inside the fragments of the dislocation is practically not observed. Determined that after ECAP-12 increase the tensile strength and yield strength of alloys AMG6 and AMC.

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114-120

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September 2017

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© 2017 Trans Tech Publications Ltd. All Rights Reserved

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[1] O. Sitdikov, S. Krymskiy, M. Markushev, E. Avtokratova,T. Sakai. Effect of heat treatment on nanostructuring in high-strength aluminum alloy by severe plastic deformation. Rev. Adv. Mater. Sci. 2012. Vol. 31. P. 62-67.

DOI: 10.1063/1.5013814

Google Scholar

[2] M. Calcagnotto, Y. Adachi, D. Ponge, D. Raabe, Deformation and fracture mechanisms in fine- and ultrafine-grained ferrite/martensite dual-phase steels and the effect of aging. Acta Materialia. 2011. 59. P. 658-670.

DOI: 10.1016/j.actamat.2010.10.002

Google Scholar

[3] R. Song, D. Ponge, D. Raabe, J. Speer, D. Matlock, Overview of processing, microstructure and mechanical properties of ultrafine grained bcc steels. Materials science and Engineering A. 2006. 441. P. 1-17.

DOI: 10.1016/j.msea.2006.08.095

Google Scholar

[4] L. L. Rokhlin, N. R. Bochvar, A. V. Sukhanov, N. P. Leonova. Structure and strength properties of the cold-deformed Al–Mg2Si-based alloys with additives of transition metals. Inorganic Materials: Applied Research. 2016. 7 (5). P. 682–686.

DOI: 10.1134/s2075113316050233

Google Scholar

[5] I.G. Brodova I.G. Shirinkina, O.A. Antonova, E.V. Shorokhov, I.I. Zhgilev. Formation of a submicrocrystalline structure upon dynamic deformation of aluminum alloys. Materials Science and Engineering: A. 2009. 503, P. 103–105.

DOI: 10.1016/j.msea.2007.12.060

Google Scholar

[6] G. Brodova , A. N. Petrova, S. V. Razorenov, O. P. Plekhov, E. V. Shorokhov. Deformation behavior of submicrocrystalline aluminum alloys during dynamic loading. Russian Metallurgy (Metally). 2016. 2016 (4), P. 342–348.

DOI: 10.1134/s0036029516040066

Google Scholar

[7] Gholinia, P.B. Prangnell, M.V. Markushev. The effect of strain path on the development of deformation structures in severely deformed aluminium alloys processed by ECAE. Acta Materialia. 2000. 48 (5), P. 1115–1130.

DOI: 10.1016/s1359-6454(99)00388-2

Google Scholar

[8] G.K. Uazyrkhanova, B.K. Rakhadilov, A.A. Myakinin, Zh.K. Uazyrkhanova. Effect of intensive plastic deformation on microstructure and mechanical properties of aluminum alloys. Materials Science and Engineering. 2016, 142, Р. 11-17.

DOI: 10.1088/1757-899x/142/1/012035

Google Scholar

[9] M. Skakov, G. Uazyrkhanova, N. Popova, M. Sсheffler: Influence of deformation on the phase structure of a 30CrMnSi steel. Materials testing. 2013. 55 (1). P. 51-54.

DOI: 10.3139/120.110404

Google Scholar

[10] Uazyrkhanova G.K., Skakov М.K., Popova N.A. Electron microscopic analysis of 30CrMnSiA steel surface layers after hot deformation. Applied Mechanics and Materials, 2013. 395-396, Р. 336-341.

DOI: 10.4028/www.scientific.net/amm.395-396.336

Google Scholar