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Title of the article

IMPACT OF SYNTHESIZED SiC–Al2O3 NANOCOMPOSITE ON THE STRUCTURE AND TRIBOMECHANICAL PROPERTIES OF AK12M2MgN PISTON ALLOY

Authors

KOMAROV Aleksandr I., Ph. D. in Eng., Head of the Laboratory of Modification Techniques of Structural Materials, Joint Institute of Mechanical Engineering of the National Academy of Sciences of Belarus, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

KOMAROVA Valentina I., Ph. D. in Phys.-Math., Leading Researcher, Joint Institute of Mechanical Engineering of the National Academy of Sciences of Belarus, Minsk, Republic of Belarus

SHIPKO Aleksey A., D. Sc. in Eng., Prof., Joint Institute of Mechanical Engineering of the National Academy of Sciences of Belarus, Minsk, Republic of Belarus

ORDA Dmitriy V., Junior Researcher, Joint Institute of Mechanical Engineering of the National Academy of Sciences of Belarus, Minsk, Republic of Belarus

In the section MATERIALS SCIENCE IN MECHANICAL ENGINEERING
Year 2017 Issue 1 Pages 71–78
Type of article RAR Index UDK 669.715 Index BBK  
Abstract

Scientific and methodological principles of synthesis of heterophase filler with nanoparticles of SiC, α-Al2O3, Si, Fe are developed on the basis of oxides micropowder and carbide-forming elements. The processed filler, introduced into aluminum melts, provides reinforcement of the aluminum-matrix composites. It is found that the effect of this process is refinement of alloy matrix structure 2–3 times, which leads to increase in the microhardness of the alloy structural phases. It is shown that introduction of 3 wt.% α-phase increases microhardness by 100 MPa and 100–105 MPa at the eutectic point. The samples of the composite material on the base of silumin AK12M2MgN, containing 1–2 wt.% of the composite modifier, have the increased wear resistance 2–4 times higher than the initial alloy samples.

Keywords

nanoparticles, silicon carbide, corundum, structure, aluminum alloy, microhardness, friction coefficient, wear resistance

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