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COMPOSITES AND MULTIPURPOSE COATINGS
Название Effect of gas flow rate on the structure and growth efficiency of aluminum-based coatings reinforced with carbon and ceramic particles
DOI 10.17580/tsm.2025.09.05
Автор Aborkin A. V.
Информация об авторе

Vladimir State University named after Alexander and Nikolay Stoletovs, Vladimir, Russia
A. V. Aborkin, Associate Professor, chair for Mechanical Engineering Technology, Candidate of Engineering Sciences, Associate Professor, e-mail: aborkin@vlsu.ru

Реферат

Aluminum alloy powders AMg6, multi-reinforced with fullerenes C60 and aluminum nitride AlN particles, were synthesized using high-energy mechanical treatment in a planetary mill. The powders were characterized using granulometric analysis, scanning electron microscopy, and X-ray diffraction analysis. The resulting powders are a complex mechanical mixture consisting of agglomerates and free microsized ceramic AlN particles. The products were used for cold gas-dynamic spraying under low pressure conditions at gas flow rates of ~525 and 625 m/s. The effect of gas flow rate and AlN content in the powder mixture on the growth rate and texture formation of coatings during spraying on a steel substrate was studied. It was shown that the gas flow rate affects the coating growth rate to a greater extent than the content of ceramic particles in the powder mixture. It was found that an increase in the gas flow rate from ~525 to ~625 m/s promotes an increase in the spray growth rate by ~1.5–2.3 times. An increase in the degree of deformation of plastic particles of the matrix material with an increase in the collision velocity upon impact with the substrate leads to the formation of a deformation texture of the coating. Quantitative estimates were obtained for the effect of the AlN content in the powder mixture and the gas flow rate during spraying on the share of ceramic particles transferred to the coating. It is suggested that spraying of powder mixtures at a gas flow rate of ~525 m/s ensures the transfer of only ceramic particles contained in agglomerates into the coating. Free ceramic particles of the powder mixture at such a gas flow rate are apparently not fixed in the coating. Increasing the gas flow rate to ~625 m/s promotes the transfer of not only ceramic particles contained in agglomerates into the coating, but also the fixation of free ceramic particles of the powder mixture.
The work was carried out within the framework of the state assignment in the field of scientific activity of the Ministry of Science and Higher Education of the Russian Federation (topic FZUN-2024-0004, state assignment of VlSU).

Ключевые слова Multi-reinforcement, fullerenes, ceramic particles, gas-dynamic spraying, powder composite coatings, gas flow rate
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