Журналы →  Non-ferrous Мetals →  2026 →  №1 →  Назад

COMPOSITES AND MULTIPURPOSE COATINGS
Название Effect of low-energy mechanical processing of powder on the formation of structural-phase composition in additive manufacturing of carbon nanotube-reinforced aluminum matrix composites
DOI 10.17580/nfm.2026.01.03
Автор Bokaryov D. V., Raznoschikov A. S., Lelekova A. F., Aborkin A. V.
Информация об авторе

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

D. V. Bokaryov, Post-Graduate Researcher, bokarev.1998@list.ru
A. S. Raznoschikov, Post-Graduate Researcher, raznoschikoff.ar@yandex.ru
A. F. Lelekova, Junior Researcher, lelekowa.a@yandex.ru
A. V. Aborkin, Candidate of Technical Sciences, Associate Professor, aborkin@vlsu.ru

Реферат

In this study, samples were fabricated via selective laser melting (SLM) from composite mixtures based on ASP-30 aluminum powder reinforced with 0.25 vol.% multi-walled carbon nanotubes (CNTs). Powder composites were synthesized through low-energy mechanical processing (LEMP) of the initial constituents in a planetary mill using grinding bodies with diameters of 4 mm and 8 mm. The influence of grinding bodies diameter on particle morphology, structure, and phase composition of the powders was evaluated. It was established that low-energy mechanical processing led to hydrogen and oxygen saturation of the powder mixtures. The mechanism of CNT distribution within the powder mixture during LEMP is described. It has been shown that during SLM of a powder mixture processed with 4 mm diameter milling bodies, the Al4C3 phase forms due to the consumption of defective regions of the CNTs, accompanied by an increase in oxygen content and the consequent formation of the Al2Ophase. For the powder mixture processed with 8 mm grinding bodies, a decrease in the structural integrity of CNTs accompanied by reduced oxygen content was observed, indicating significant CNT degradation under laser exposure. Reinforcement of the AlSi10Mg matrix alloy by both exogenous and endogenous phases, along with structural refinement in samples produced from composite powders, resulted in an increase in microhardness by approximately 21–28% compared to the initial powder, along with a 2.2–2.9-fold improvement in wear resistance.

The research was carried out within the state assignment in the field of scientific activity of the Ministry of Science and Higher Education of the Russian Federation (theme FZUN-2024-0004, state assignment of the VlSU).

Ключевые слова Aluminum matrix composites, carbon nanotubes, selective laser melting, mechanical synthesis, planetary mill, microhardness
Библиографический список

1. Ostojic S., Traverso M. From Aluminium to Composites: a Comparative Social Life Cycle Assessment of Automotive Lightweight Components. Journal of Cleaner Production. 2025. Vol. 523. 146361.
2. Divakar S., Sardar S., Sah S., Das D. A. State-Of-The-Art Review on SiC and MWCNTs Reinforced Hybrid Metal Matrix Composites: Processing, Properties, and Applications. Hybrid Advances. 2025. Vol. 10. 100454.
3. Aranke O., Gandhi C., Dixit N., Kuppan P. Influence of Multiwall Carbon Nanotubes (MWCNT) on Wear and Coefficient of Friction of Aluminium (Al 7075) Metal Matrix Composite. Materials Today: Proceedings. 2018. Vol. 5, Iss. 2, Pt. 2. P. 7748–7757.
4. Romanov A. D., Romanova E. A., Mironov A. A., Kikeev V. A., Obiedkov A. M., Kaverin B. S., Vilkov I. V. Developing a Technology for Obtaining an Aluminum Matrix Composite Reinforced with Multi-Walled Carbon Nanotubes. Metallurgist. 2024. Vol. 68. Iss. 3. pp. 427–432.
5. Romanov A. D., Romanova E. A., Vilkov I. V., Obedkov A. M., Semenov N. M., Kaverin B. S., Kovylin R. S. Technology for Producing Aluminum-Matrix Composite Material Reinforced with Multi-Wall Carbon Nanotubes. Metallurgist. 2022. Vol. 66. Iss. 5-6. pp. 681–687.
6. Kremlev K. V., Ob”edkov A. M., Semenov N. M., Kaverin B. S., Ketkov S. Yu., Gusev S. A., Yunin P. A., Elkin A. I., Aborkin A. V. The Gas-Phase Synthesis of a New Functional Hybrid Material on the Basis of Multiwalled Carbon Nanotubes Decorated with Faceted Aluminum Nanocrystals. Technical Physics Letters. 2018. Vol. 44. pp. 865–868.
7. Jeon T. J., Hwang T. W., Yun H. J., VanTyne C. J., Moon Y. H. Control of Porosity in Parts Produced by a Direct Laser Melting Process. Applied Sciences. 2018. Vol. 8, Iss. 12. 2573.
8. Higashi M., Ozaki T. Selective Laser Melting of MoSiBTiC Alloy with Plasma-Spheroidized Powder: Microstructure and Mechanical Property. Materials Characterization. 2021. Vol. 172. 110888.
9. Wang, L., Chen, T., Wang, S. Microstructural Characteristics and Mechanical Properties of Carbon Nanotube Reinforced AlSi10Mg Composites Fabricated by Selective Laser Melting. Optik. 2017. Vol. 143. 173–179.
10. Gu D., Rao X., Dai D., Ma C., Xi L., Lin K. Laser Additive Manufacturing of Carbon Nanotubes (CNTs) Reinforced Aluminum Matrix Nanocomposites: Processing Optimization, Microstructure Evolution And Mechanical Properties. Additive Manufacturing. 2019. Vol. 29. pp. 2–10.
11. Aboulkhair N. T., Simonelli M., Salama E., Rance G. A., Neate N. C., Tuck C. J., Esawi A. M. K., Hague R. J. M. Evolution of Carbon Nanotubes and Their Metallurgical Reactions in Al-based Composites in Response to Laser Irradiation During Selective Laser Melting. Materials Science and Engineering: A. 2019. Vol. 765. 138307.
12. Aborkin A. V., Khor’kov K. S., Ob”edkov A. M., Kremlev K. V., Izobello A. Yu., Volochko A. T., Alymov M. I. Evolution of Multiwalled Carbon Nanotubes and Related Nanostructures during the Formation of Alumomatrix Composite Materials. Technical Physics Letters. 2019. Vol. 45. pp. 20–23.
13. Gusev V. G., Sobol’kov A. V., Aborkin A. V., Alymov M. I. Simulation of the Energy–Force Parameters of Planetary Ball Mill Processing and Estimation of Their Influence on the Particle Size in an AMg2 Alloy/Graphite Composite Powder. Russian Metallurgy (Metally). 2019. Vol. 2019. pp. 24–30.
14. Ob’edkov A. M., Kaverin B. S., Egorov V. A., Semenov N. M., Ketkov S. Yu., Domrachev G. A., Kremlev K. V., Gusev S. A., Perevezentsev V. N., Moskvichev A. N., Moskvichev A. A., Rodionov A. S. Macro-Cylinders Based on Radially Oriented Multi-Walled Carbon Nanotubes. Letters on Materials. 2012. Vol. 2. pp. 152–156.
15. Bokarev D. V., Aborkin A. V. Influence of the Energy Intensity of Processing in a Planetary Ball Mill on the Structure of ASP-30 Powder. Progressive Foundry Technologies: Proceedings of the XII International Scientific and Practical Conference. Moscow: National University of Science and Technology MISIS, 2024, pp. 443–449.
16. Wu J., Lin M. L., Cong X., Liu H. N., Tan P. H. Raman Spectroscopy of Graphene-Based Materials and Its Applications in Related Devices. Chemical Society Reviews. 2018. Vol. 47, Iss. 5. pp. 1822–1873.
17. Wang W., Bian X., Qin J., Syliusarenko S. I. The Atomic-Structure Changes in Al-16 pct Si Alloy Above the Liquidus. Metallurgical and Materials Transactions A. 2000. Vol. 31.pp. 2163–2168.
18. Shinkaryov A. S., Ozherelkov D. Y., Pelevin I. A., Ere min S. A., Anikin V. N., Burmistrov M. A., Chernyshikhin S. V., Gro mov A. A., Nalivaiko A. Y. Laser Fusion of Aluminum Powder Coated with Diamond Particles via Selective Laser Melting: Powder Preparation and Synthesis Description. Coatings. 2021. Vol. 11, Iss. 10. 1219.
19. Robles Hernandez F., Sokolowski J., Cruz Rivera J. de J. Micro-Raman Analysis of the Si Particles Present in Al-Si Hypereutectic Alloys in Liquid and Semi-Solid States. Advanced Engineering Materials. 2007. Vol. 9. pp. 46–51.
20. Li Z., Li B.-Q., Bai P., Liu B., Wang Y. Research on the Thermal Behaviour of a Selectively Laser Melted Aluminium Alloy: Simulation and Experiment. Materials. 2018. Vol. 11. 1172.
21. Aborkin A., Babin D., Bokaryov D. Control of Al4C3 Phase Formation in Aluminum Matrix Composites Reinforced with Carbon Nanostructures. E3S Web of Conferences. 2023. Vol. 431. 06012.
22. Chen B., Shen J., Ye X., Imai H., Umeda J., Takahashi M., Kondoh K. Solid-State Interfacial Reaction and Load Transfer Efficiency in Carbon Nanotubes (CNTs)-Reinforced Aluminum Matrix Composites. Carbon. 2017. Vol. 114. P. 198–208.
23. Chen B., Jia L., Li S., Imai H., Takahashi M. Kondoh K. In Situ Synthesized Al4C3 Nanorods with Excellent Strengthening Effect in Aluminum Matrix Composites. Advanced Engineering Materials. 2014. Vol. 16. pp. 972–975.
24. Luo S., Li R., He P., Yue H., Gu J. Investigation on the Microstructure and Mechanical Properties of CNTs-AlSi10Mg Composites Fabricated by Selective Laser Melting. Materials. 2021. Vol. 14. Iss. 4. pp. 1–15.
25. Ozherelkov D. Y., Pelevin I. A., Nalivaiko A. Y., Zotov B. O., Fedorenko L. V., Gromov A. A. Use of Carbon Nanofibers in the Additive Manufacturing of Aluminum Matrix Composites. Russian Metallurgy (Metally). 2023. Vol. 10. pp. 1374–1381.
26. Yu T., Liu J., He Y., Tian J., Chen M., Wang Y. Microstructure and Wear Characterization of Carbon Nanotubes (CNTs) Reinforced Aluminum Matrix Nanocomposites Manufactured Using Selective Laser Melting. Wear. 2021. Vol. 476. 203581.

Language of full-text английский
Полный текст статьи Получить
Назад