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Diagnostics of the Properties of an Experimental Aluminum Matrix Cast Composite Material

  • A. I. Pronin,
  • V. V. Myl’nikov,
  • S. B. Mar’in,
  • S. O. Semenov,
  • D. I. Shetulov

摘要

Abstract—Aluminum-based composite materials on are widely used in various industries for the manufacture of parts and structural elements. The paper presents the results of diagnostics of the properties of experimental aluminum-based disperse-hardened composite materials (DHCM) obtained by internal oxidation. The interrelated mechanical and technological properties of composites were studied, identifying a correlation between the parameters of vibroacoustic emission (VAE) and the dynamic method of processing materials in different structural and phase states. Five batches of DHCM castings made by different modes of synthesis of solid phase inclusions in the material matrix were analyzed. The methods and test results for determining the microstructure, chemical composition, hardness of workpieces, dynamic components, and the VAE signal during their processing are presented. Differences in the chemical composition of castings have been established by energy and wave dispersion spectrometry. No relationship between the percentage of alloying elements in alloys and hardness of the workpiece material has been revealed. At the same time, samples of different melts showed different values of microhardness. The difference in the microhardness of the workpiece materials has little effect on the cutting force and, consequently, on the generated VAE signals. The dependence between the change in the parameter of the VAE signal (RMS value) and the processing mode parameter (cutting rate) is established. It is shown that the RMS value of the VAE signal, as an informative parameter, makes it possible to adequately assess the change in the turning speed of DHCM blanks at which a decrease in the components of the cutting force is observed and the required roughness of the treated surface is achieved. The results can be used to determine the optimal cutting rates, yielding a lower value of the components of the cutting force and a given roughness of the treated surface.