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COMPOSITES AND MULTIPURPOSE COATINGS
Название Interaction of aluminium-silicon melts with boron carbide during multiple remelts of composite materials
DOI 10.17580/tsm.2024.01.07
Автор Prusov E. S., Deev V. B., Aborkin A. V.
Информация об авторе

Vladimir State University named after Alexander and Nikolay Stoletovs, Vladimir, Russia

E. S. Prusov, Associate Professor at the Department of Functional and Structural Materials Engineering, Candidate of Technical Sciences, Associate Professor

A. V. Aborkin, Lecturer at the Department of Mechanical Engineering, Candidate of Technical Sciences, Associate Professor

 

Vladimir State University named after Alexander and Nikolay Stoletovs, Vladimir, Russia1 ; Wuhan Textile University, Wuhan, China2 ; National University of Science and Technology MISIS, Moscow, Russia3

V. B. Deev, Principal Researcher1, Professor at the Faculty of Mechanical Engineering and Automation2, Professor at the Department of Metal Forming3, Doctor of Technical Sciences, Professor, (Corresponding Author), e-mail: deev.vb@mail.ru

Реферат

This paper aims to identify possible changes in the nature of interfacial interactions at different remelt stages in order to clarify the mechanisms of metal lurgical processes during recycling of cast Al – Si – B4C-base composites. The method of differential scanning calorimetry (DSC) was used to examine the interfacial reactions between the components of the cast composites. Pilot measurements showed that the presence of undivided thermal effects with similar temperature characteristics is limiting their distinguishability in such a general representation. To increase the level of detail, the results were presented as fragments of DSC curves in temperature intervals corresponding to the thermal effects identified on the full DSC curve. In some cases, when weak thermal effects observed only during cooling could not be identified even by scaling, additional firs t - order derivative curves of the heating curve (dDSC) were built, which are a function of the changing temperature rate. The analysis of DSC curves helped determine the characteristic temperatures, as well as the heat released or absorbed for the melting-crystallization of cast composite materials AK12och + 10 vol.% B4C at different stages of repeated remelts during controlled heating or cooling.

This research was funded by the Russian Science Foundation (Project № 21-79-10432, https://rscf.ru/project/21-79-10432/). The work was performed using the equipment of the Joint Research Centre at the Institute of General and Inorganic Chemistry of the Russian Academy of Sciences. The authors would like to thoroughly thank A.V. Khoroshilov, PhD (Chemistry), for his comprehensive support in conducting the differential scanning calorimetry study.

Ключевые слова Cast aluminium matrix composites, multiple remelts, interfacial interaction, boron carbide, differential scanning calorimetry
Библиографический список

1. Surappa M. K. Aluminium matrix composites: challenges and opportunities. Sadhana – Academy Proceedings in Engineering Sciences. 2003. Vol. 28, Iss. 1-2. pp. 319–334.
2. Chawla N., Shen Y.-L. Mechanical behavior of particle reinforced metal matrix composites. Advanced Engineering Materials. 2001. Vol. 3, No. 6. pp. 357–370.
3. Dasgupta R. Aluminium alloy-based metal matrix composites: a potential material for wear resistant applications. ISRN Metallurgy. 2012. Vol. 2012, No. 2. pp. 1–14.
4. Prasad S. V., Asthana R. Aluminum metal-matrix composites for automotive applications: Tribological considerations. Tribology Letters. 2004. Vol. 17, Iss. 3. pp. 445–453.
5. Mavhungu S. T., Akinlabi E., Onitiri M., Varachia F. M. Aluminum matrix composites for industrial use: advances and trends. Procedia Manufacturing. 2016. Vol. 7, No. 3. pp. 178–182.
6. Suthar J., Patel K. M. Processing issues, machining, and applications of aluminum metal matrix composites. Materials and Manufacturing Processes. 2018. Vol. 33, Iss. 5. pp. 499–527.
7. Kumar A., Rai R. N. Fabrication, microstructure and mechanical properties of boron carbide (B4Cp) reinforced aluminum metal matrix composite – A review. IOP Conference Series: Materials Science and Engineering. 2018. Vol. 377. Article ID 012092.
8. Domnich V., Reynaud S., Haber R. A., Chowalla M. Boron carbide: structure, properties, and stability under stress. Journal of the American Ceramic Society. 2011. Vol. 94. pp. 3605–3628.
9. Baradeswaran A., Elaya Perumal A. Influence of B4C on the tribological and mechanical properties of Al 7075–B4C composites. Composites Part B: Engineering. 2013. Vol. 54, Iss. 1. pp. 146–152.
10. Akkas A., Tugrul A. B., Buyuk B., Addemir A. O. et al. Shielding effect of boron carbide aluminium metal matrix composite against gamma and neutron radiation. Acta Physica Polonica A. 2015. Vol. 128, Iss. 2. pp. 176–179.
11. Ghayebloo M., Mostaedi M. T., Rad H. F. A review of recent studies of fabrication of Al–B4C composite sheets used in nuclear metal casks. Transactions of the Indian Institute of Metals. 2022. Vol. 75. pp. 2477–2490.
12. Kalaiselvan K., Murugan N., Parameswaran S. Production and characterization of AA6061-B4C stir cast composite. Materials and Design. 2011. Vol. 32, Iss. 7. pp. 4004–4009.
13. Zhang Z., Fortin K., Charette A., Chen X.-G. Effect of titanium on microstructure and fluidity of Al-B4C composites. Journal of Materials Science. 2011. Vol. 46. pp. 3176–3185.
14. Lin Q., Shen P., Zhang D., Jiang Q. Wetting of polycrystalline B4C by molten Al at 1173-1473 K. Scripta Materialia. 2009. Vol. 60. pp. 960–963.
15. Viala J. C., Bouix J., Gonzalez G., Esnouf C. Chemical reactivity of aluminium with boron carbide. Journal of Materials Science. 1997. Vol. 32. pp. 4559–4573.
16. Mazahery A., Shabani M. O. Sol–gel coated B4C particles reinforced 2024 Al matrix composites. Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications. 2011. Vol. 226, Iss. 2. pp. 159–169.
17. Prusov E. S., Deev V. B., Shurkin P. K., Arakelian S. M. The effect of alloying elements on the interaction of boron carbide with aluminum melt. Non-Ferrous Metals. 2021. Vol. 50, No. 1. pp. 27–33.
18. Prusov E. S., Deev V. B., Aborkin A. V., Bokaryov D. V., Kireev A. V. Metallurgical processes at the recycling of aluminum matrix composites via direct remelting. Metallurgist. 2022. Vol. 66, Iss. 7-8. pp. 989–1000.
19. Prusov E. S., Panfilov A. A., Arakelyan S. M., Deev V. B., Lesiv E. M. Stir cast aluminium matrix composites with boron carbide: Fabrication features. Liteynoe proizvodstvo. 2021. No. 12. pp. 12–16.
20. Pyzik A. J., Beaman D. R. Al-B-C Phase development and effects on mechanical properties of B4C/Al-derived composites. Journal of the American Ceramic Society. 1995. Vol. 78, No. 2. pp. 305–312.
21. Van Setten M. J., Fichtner M. On the enthalpy of formation of aluminum diboride, AlB2. Journal of Alloys and Compounds. 2009. Vol. 477, No. 1-2. pp. L11–L12.
22. Hu Q., Guo W., Xiao P., Yao J. First-principles investigation of mechanical, electronic, dynamical, and thermodynamic properties of Al3BC. Physica B: Physics of Condensed Matter. 2021. Vol. 616. Article No. 413127.

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