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MATERIALS SCIENCE
Название Effect of iron on the structure, hardening and physical properties of the alloys of the Al – Zn – Mg – Ca system
DOI 10.17580/tsm.2018.05.10
Автор Shurkin P. K., Dolbachev A. P., Naumova E. A., Doroshenko V. V.
Информация об авторе

National University of science and technology “MISiS”, Moscow, Russia:

P. K. Shurkin, Engineer of the Department of Metal Forming, e-mail: pa.shurkin@yandex.ru
A. P. Dolbachev, Engineer of the Department of Metal Forming
E. A. Naumova, Associate professor of the Department of Metal Forming
V. V. Doroshenko, Engineer of the Department of Metal Forming

Реферат

The theoretical and experimental investigation of the effect of iron content (1, 0.5 and 0.25%) on various Al – Zn – Mg – Ca based alloys containing Mg (3%), Zn (6 and 12%), Ca (0,1 and 2%) has been conducted. It is revealed that the crystallization process in all the studied alloys containing 1% Fe, regardless of the amount of calcium, begins with the formation of coarse Al3Fe phase. In the alloys containing 2% Ca and 0.5–0.25% Fe, the Al10CaFe2 ternary phase formed by the reaction L → (Al) + Al10CaFe2 + (AlZn)4Ca at a temperature of 596 оC. This phase has a skeletal morphology similar to that of the Al15(Fe, Mn)3Si2 phase. Application of two-stage heat treatment at 450 оC, 3 h + 500 оC, 3 h allowed dissolving the T-phase, as well as spheroidizing the equilibrium intermetallics including the Al10CaFe2 phase. In the presence of 12% Zn, the temperature of the equilibrium solidus is reduced to 480 оC, thus causing the incipient melting during spheroidization heat treatment. The content of up to 0.5% Fe showed little effect on the density. The lowest density (2.7 g/cm3) is achieved in an alloy containing 6% Zn, 2% Ca and 0.5% Fe, which is lower than the values of other experimental alloys by 0.1–0.2 g/cm3. The values of the specific electrical conductivity and microhardness as a function of the aging temperature showed a positive effect of iron on hardening of the alloys of the Al – Zn – Mg – Ca system, which can be explained by the formation of a smaller amount of the (AlZn)4Ca phase due to its formation in combination with the Al10CaFe2 phase. The values depend strongly on the amount of zinc. In the maximum hardening (T6) state, alloys with 12% Zn and 1% Fe have a microhardness of 218 units, with a content of 0.5% Fe – 201 units, 0.25% Fe — 196 units, and alloys containing 6 % Zn — 151 (1% Fe), 141 (0.5% Fe), and 119 (0.25% Fe) units. According to the results obtained, further research directions aimed to study the nature of the distribution of calcium between the intermetallic phases (AlZn)4Ca and Al10CaFe2 have been substantiated. It is assumed that the composition Al – 3% Mg – (6–8%) Zn – 2% Ca – 0.5% Fe is capable of providing high hardening and workability not only in the casting state, but also upon metal forming.

The article was prepared within the framework of the AgreementNo. 14.578.21.0220 (the unique identifier of the RFMEFI57816X0220) for granting a subsidy from the Ministry of Education and Science of Russia within the framework of the federal program “Research and development in priority areas for the development of Russia's scientific and technological complex for 2014–2020”.

Ключевые слова High-strength aluminum alloys, Al – Zn – Mg – Ca system, iron, calcium, phase composition, physical properties, microstructure, hardening
Библиографический список

1. Entoni U. U., Eliot F. R., Boll M. D. Aluminium. Properties and physical metallurgy. Ed. J. E. Xetch. Translated from English. Мoscow : Metallurgiya, 1989. 324 p.
2. Belov N. A. Phase composition of industrial and promising aluminium alloys. Moscow : Izdatelskiy dom MISiS, 2010. 511 p.
3. Prasad N. E., Wanhill R. J. H. Aerospace materials and material technologies. Vol. 1. Aerospace materials. Singapore : Springer, 2017. 557 p.
4. Ibrahim M. F., Garza-Elizondo G. H., Samuel A. M., Samuel F. H. Optimizing the Heat Treatment of High-Strength 7075-Type Wrought Alloys: A Metallographic Study. International Journal of Metal Casting. 2016. Vol. 10, Iss. 3. pp. 264–275.
5. Vakhromov R. O., Antipov V. V., Tkachenko E. A. Research and Development of High-Strength of Al – Zn – Mg – Cu Alloys. Proceedings of ICAA-13. Pittsburgh, 2012. pp. 1515–1520.
6. Li N., Cui J. Microstructural evolution of high strength 7B04 ingot during homogenization treatment. Transactions of Nonferrous Metals Society of China. 2008. Vol. 18, Iss. 4. pp. 769–773.
7. Grandfield J. F., Eskin D. G., Bainbridge I. F. Direct-chill casting of light alloys: science and technology. Hoboken, New Jersey : John Wiley & Sons, Inc. 2013. 411 p.
8. Fan Y., Li Zh., Li X., Wen K., Zhang Y., Xiong B., Xie J. Investigation on As-Cast Microstructure in a high Zn-containing Al – Zn – Mg – Cu – Zr alloy and Its Evolution during Two-stage Homogenization. Asia-Pacific Engineering and Technology Conference (APETC 2017). 2017. pp. 421–427.
9. Lu X. Y., Guo E. J., Rometsch P. Effect of one-step and two-step homogenization treatments on distribution of Al3Zr dispersoids in commercial AA7150 aluminium alloy [J]. Transactions of Nonferrous Metals Society of China. 2012. No. 22. pp. 2645–2651.
10. Robson J. D. Microstructural evolution in aluminium alloy 7050 during processing. Materials Science and Engineering : A. 2004. Vol. 382, No. 1–2. pp. 112–121.
11. Shurkin P. K., Belov N. A., Akopyan T. K., Alabin A. N., Aleshchenko A. S., Avxentieva N. N. Formation of the structure of thin-sheet rolled product from a high-strength sparingly alloyed aluminum alloy “nikalin”. Physics of Metals and Metallography. 2017. Vol. 118, Iss. 9. pp. 896–904.
12. Akopyan T. K., Belov N. A. Approaches to the design of the new highstrength casting aluminum alloys of 7xxx series with high iron content. Non-ferrous Metals. 2016. No. 1. pp. 20–27.
13. Mann V. Kh., Alabin A. N., Krokhin A. Yu., Frolov A. V., Belov N. A. New generation of high strength aluminum casting alloys. Light Metal Age. 2015. Vol. 73, No. 5. pp. 44–47.
14. Belov N. A., Naumova E. A., Akopyan T. K. Eutectic alloys based on aluminum: new alloying systems. Мoscow : “Ore and metals” Publishing house, 2016. 256 p.

15. Belov N. A., Naumova E. A., Akopyan T. K. Eutectic alloys based on the Al – Zn – Mg – Ca system: microstructure, phase composition and hardening. Materials Science and Technology. 2017. Vol. 33, Iss. 6. pp. 656–666.
16. Belov N. A., Naumova E. A., Ilyukhin V. D., Doroshenko V. V. Structure and mechanical properties of Al – 6% Ca – 1% Fe alloy foundry goods, obtained by die casting. Tsvetnye Metally. 2017. No. 3. pp. 69–75.
17. Dobatkin V. I., Elagin V. I., Fedorov V. M. Fast-crystallized aluminum alloys. Moscow : VILS, 1995. 341 p.
18. Thermo-Calc Software TTAL5 Al-Alloys. Available at: www.thermocalc.com (accessed: 23.01.2018).
19. Belov N. A., Naumova E. A., Doroshenko V. V., Bazlova T. A. Effect of manganese and iron on the phase composition and microstructure of aluminumcalcium alloys. Tsvetnye Metally. 2017. No. 8. pp. 66–71.
20. Bidmeshki C., Abouei V., Saghafian H., Shabestari S. G., Noghani M. T. Effect of Mn addition on Fe-rich intermetallics morphology and dry sliding wear investigation of hypereutectic Al–17.5%Si alloys. Journal of Materials Research and Technology. 2016. Vol. 5, Iss. 3. pp. 250–258.
21. Irizalp S. G., Saklakoglu N. Effect of Fe-rich intermetallics on the microstructure and mechanical properties of thixoformed A380 aluminum alloy. Engineering Science and Technology. 2014. Vol. 17, Iss. 2. pp. 58–62.

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