Stability of Strength Characteristics of Hardened by Deformation AMg6 Alloy during High-Speed Heating

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The results were shown in influence of fast heating parameters on the structure and properties of cold-worked alloy AMg6 with original hot-forged structure. Based on the measured data, the change of mechanical properties of cold-worked alloy AMg6 during the process of short duration heating was evaluated. There was reviewed the role of the temperature and the time of heat on the processes of softening the samples of cold-worked alloy AMg6. The stability of mechanical characteristics of hammer-hardened alloy AMg6 under elevated test temperatures was evaluated. It is shown that the return processes in cold-deformed AMg6 alloy during heating in the temperature range studied receive the most intensive development in the first 5–10 minutes, reducing the hardening effect from cold deformation, determined by tensile strength, respectively: by 8–9% with 100 °C; 26–27% at 150 °C; 37–38% at 200 °C; 42–44% at 250 °C and 50% at 300 °C. A decrease in the yield strength during high-speed heating in the temperature range studied is much faster ,compared with the change in the tensile strength. Hour exposure at 200 °C reduces the hardening effect on the yield strength from 340 MPa to 258 MPa, while the tensile strength decreases from 430 MPa to 385 MPa.

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110-115

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May 2020

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[1] Aluminum alloys. The use of aluminum alloys. Reference ed., ed. by A.T. Tumanova, Moscow, Metallurgy, (1972).

Google Scholar

[2] S.G. Alieva, M.B. Altman, S.M. Ambartsumian et al., Industrial aluminum alloys: Reference. ed., Moscow, Metallurgy, (1984).

Google Scholar

[3] A.T. Tumanova, F.I. Kvasova, Aluminum. Metal science, processing and use of aluminum alloys, Moscow, Metallurgy, (1972).

Google Scholar

[4] B.A. Kolachev, V.I. Yelagin, V.A. Livanov, Metallurgy and heat treatment of non-ferrous metals and alloys, Moscow, MISIS, (1999).

Google Scholar

[5] A.I. Belyaev, O.A. Romanova, O.S. Bochvar et al., Metallurgy of aluminum and its alloys, Moscow, Metallurgy, (1971).

Google Scholar

[6] A.I. Belyaev, O.S. Bochvar, N.N. Buinov, Metallurgy of aluminum and its alloys: 2nd ed. reclaiming and add., Moscow, Metallurgy, (1983).

Google Scholar

[7] N. Kondratieff, Yu.P. Arbuzov, V.P. Porokhov, Properties of a hardened sheet material from AMg6 alloy, Aluminum Alloys. Vol. 6. Weldable alloys. –M .: Metallurgy, 1969. - pp.9-13.

Google Scholar

[8] N. Kondratieff. et al. Influence of hardening on the properties of AMg6 alloy sheet material, Aluminum Alloys. Structural alloys. 5(1968) 88–82.

Google Scholar

[9] N. Kondratieff et al. Properties of a hardened sheet material from AMg6 alloy, Aluminum Alloys. Weldable alloys. 6(1969) 9–13.

Google Scholar

[10] Yu.A. Volkov, T.I. Sokolov, Changes in the properties of AMg7 alloy during storage, Metallography and heat treatment of metals. 11(1970) 32–34.

Google Scholar

[11] M.Z. Yermanok, L.P. Shipilova, Mechanical properties of semi-finished products from AMg6 alloy, Metallography and heat treatment of metals. 10(1963) 36–37.

Google Scholar

[12] Z.N. Archakova, G.A. Balakhontsev, I.G. Basova et al., Structure and properties of semi-finished products from aluminum alloys, 2nd ed. reclaiming and add., Moscow, Metallurgy, (1984).

Google Scholar

[13] V.I. Gorbenko, Automated construction of temperature fields of objects in the problems of heat conduction: A manual for the course Heat and Mass Transfer,, Chelyabinsk, ChPI, (1987).

Google Scholar

[14] D.A. Mirzaev , Yu.D. Koryagin, Ya.S. Dobrynina, A.A. Zvonkov, Study and modeling of the return in the AMg6 alloy in order to predict the service life of aerospace components, Physics of Metals and Metallography. V.92, 2(2004) 11-18.

Google Scholar

[15] D.A. Mirzaev, Yu.D. Koryagin, A.A. Zvonkov, Prediction of changes in the strength characteristics of an aluminum-magnesium hardened alloy system during a long exposure, Abstracts of the Twentieth School on the Design of Heterogeneous Structures, Miass. (2000) 71.

Google Scholar

[16] D.A. Mirzaev, Yu.D.Koryagin, A.A. Zvonkov, Ya.S. Dobrynina, Development of a method for predicting mechanical properties in the process of prolonged aging using the example of the AMg6 alloy, Problems of designing inhomogeneous structures: Proceedings of the XX Russian School, Miass: Chelyabinsk Scientific Center, Ural Branch of the Russian Academy of Sciences, (2001).

Google Scholar

[17] M.F. Komarova, N.N. Buinov, R.M. Lerinman, L.I. Osokina, Study of various modes of aging and return in an aluminum-magnesium alloy, Physics of Metals and Metal Science, V.23, I4(1967) 641–647.

Google Scholar