Smart Search 



Title of the article

PECULIARITIES OF THE STRUCTURE FORMATION AND PROPERTIES OF SILUMIN AlSi7 UNDER THE INFLUENCE OF THE NANOFILLER TiC-Al2O3

Authors

KOMAROV Alexander I., Ph. D. in Eng., Head of the Laboratory of Modification Technologies of Engineering Materials, Joint Institute of Mechanical Engineering of the NAS 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.

ORDA Dmitriy V., Junior Researcher of the Laboratory of Modification Technologies of Engineering Materials, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Republic of Belarus

ISKANDAROVA Donata O., Junior Researcher of the Laboratory of Modification Technologies of Engineering Materials, Joint Institute of Mechanical Engineering of the NAS of Belarus, Minsk, Republic of Belarus

In the section TECHNOLOGICAL MECHANICS
Year 2018 Issue 4 Pages 65–71
Type of article RAR Index UDK 669.715 Index BBK  
Abstract

The article deals with the structural-phase transformations of the pre-eutectic alloy AlSi7, occurring during its modification by nanoscale composition TiC–α-Al2O3, introduced together with micro powders of aluminum or copper. It is shown that the use of micro powders of different nature and morphology has a direct impact on the degree of transformation of the alloy structure. In this case, the introduction of a nanofiller is most effective together with copper powder, the particles of which are represented by dendrites with a developed surface. It is shown that the modification of the alloy by small fractions (0.5 wt.%) of nanofiller leads to dispersion of the structure (reduction of aluminum solid solution dendrites and iron-containing inclusions by 2 and 3 times, respectively), as well as changes in the morphology of intermetallic inclusions. The formation of the modified structure reduces the friction coefficient, increases wear resistance and extends the range of loads. It is shown that the introduction of nanoscale composition TiC–α-Al2O3 in the amount of 0.5 wt.% together with the micro powder of copper or aluminum leads to a decrease in the coefficient of friction in 1.8–2 times at loads up to 20 MPa, and the additional introduction of CNT provides an intensive reduction in the coefficient of friction at 30 MPa to values 0.016–0.018. It was found that the use of aluminum micro powders with the introduction of the modifier provides an increase in wear resistance by 1.4–1.6 times, and the use of copper or copper with CNT provides a multiple increase in wear resistance (weight loss on the samples is not fixed), whereas for the initial alloy it is 8.73∙10–5 mg/m.

Keywords

nanofiller, titanium carbide, corundum, structure formation, alloy AlSi7, friction coefficient, wear resistance

   
Bibliography
  • Belyaev A.I., Bochvar O.S., Buynov N.N. Metallovedenie alyuminiya i ego splavov [Metallurgy of aluminum and its alloys]. 2nd ed. Moscow, Metallurgiya Publ., 1983. 280 p.
  • Mondolfo L.F. Aluminum Alloys. Structure and Properties. London, Butterworth-Heinemann, 1976. 982 p.
  • Das D.K., Mishra P.C., Singh S., Thakur R.K. Properties of ceramic-reinforced aluminum matrix composites — a review. International Journal of Mechanical and Materials Engineering, 2014, no. 1:12, pp. 1–16.
  • Verresh Kumar G.B., Rao C.S.P., Selvaraj N. Mechanical and tribological behavior of particulate rein-forced aluminum metal matrix composites — a review. Journal of Minerals & Materials Characterization & Engineering, 2011, vol. 10, no. 1, pp. 59–91.
  • Abdel-Nasser M.O. Development of Al-TiC alloys using powder metallurgy as grain refiners for aluminum and its alloys. International Journal of Engineering Research and Applications, 2014, vol. 4, issue 7 (version 6), pp. 118–125.
  • Kaftelen H., Goller G., Unlu N., Henein H. Comparative processing-structure-property studies of Al-Cu matrix composites reinforced with TiC particulates. Composites. Part A. Applied Science and Manufacturing, 2011, no. 42, pp. 812–824.
  • Borodianskiy K., Zinigrad M. Mechanical Properties and Microstructure Characterization of Al-Si Cast Alloys Formation Using Carbide Nanoparticles. Journal of Materials Sciences and Applications, 2015, vol. 1, no. 3, pp. 85–90.
  • Mikheev R.S., Chernyshova T.A. Alyumomatrichnye kompozitsionnye materialy s karbidnym uprochneniem dlya resheniya zadach novoy tekhniki [Aluminum-matrix composite materials with carbide hardening for solving problems of new technology]. Moscow, Maska Publ., 2013. 356 p.
  • Komarov A.I. Sintez nanostrukturirovannykh tugoplavkikh napolniteley, ikh vliyanie na strukturu i svoystva siluminov [Synthesis of nanostructured high-melting fillers, their influence on the structure and properties of silumins]. Perspektivnye materialy i tekhnologii [Advanced materials and technologies], 2015, vol. 2, ch. 12, pp. 202–223.
  • Komarov A.I., Komarova D.I., Orda D.V. Sintez karbido-korundovogo napolnitelya i ego vozdeystvie na strukturu i  svoystva porshnevogo splava AK12M2MgN [Synthesis of carbide-corund filler and its impact on the structure and properties of piston GK-AlSi12(Cu) alloys]. Mekhanika mashin, mekhanizmov i materialov [Mechanics of machines, mechanisms and materials], 2016, no. 1(34), pp. 81–86.
  • Komarov A.I., Komarova V.I., Orda D.V. Kompozitsionnyy poroshok TiC–α-Al2O3 i sposob ego polucheniya [Composite powder TiC–α-Al2O3 and method for its preparation]. Patent RB, no. 22136, 2016.
  • Komarov A.I., Komarova V.I., Iskandarova D.O., Orda D.V. Sposob modifitsirovaniya alyuminiya ili alyuminiy-kremnievykh splavov [Method of modification of aluminum or aluminum-silicon alloys]. Application RB, no. 20170407, 2017.