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Powder Technology and Software Tools for Microstructure Control of AlCu2 Samples

Part of the Lecture Notes in Mechanical Engineering book series (LNME)

Abstract

The powder technology of structurally inhomogeneous materials of AlCu2 sample formation is developed. The algorithm for image recognition of separate particles’ microstructure of structurally inhomogeneous materials is formed and implemented in the Smart-eye software, which provides tools for analysis of surface and internal properties of structurally inhomogeneous materials. The developed powder technology is applied in obtaining the samples of AlCu2, which are further analysed by the Smart-eye software. The structural characteristics of the starting material (AlCu2), in particular porosity, were predicted. The analysis of the average results of the study of the microstructure of AlCu2 particles is held, which shows that the developed models allow accurate control of the microstructure and properties of structurally inhomogeneous materials obtained based on powder technologies. Improvement of granulometric composition of structurally inhomogeneous materials is proved. Based on the obtained materials developed powder technology, it is possible to predict the structural characteristics of AlCu2 raw materials at a qualitative level. Thus, it is possible to exercise to carry out practical realization of the received results on manufacture.

Keywords

  • Technology
  • Inhomogeneous materials
  • Metallographic analysis
  • Particles’
  • Smart-eye

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References

  1. Long, Z., Heng-wei, Z.: Sintering driving force of Al2O3 powders at the initial stage of pulse electric current sintering under thermoelastic diffusion. Int. J. Mech. Mater. Eng. 13(1), 2–8 (2018)

    CrossRef  Google Scholar 

  2. Apurba Kanti, D., Chatterjee, P.: Study of deformation microstructure of nickel samples at very short milling times: effects of addition of α-Al2O3 particles. J. Theor. Appl. Phys. 13, 63–73 (2019)

    CrossRef  Google Scholar 

  3. Guo, F., Weihui, J., Jianmin, L.: A novel green nonaqueous sol-gel process for preparation of partially stabilized zirconia nanopowder. Process. Appl. Ceram. 11(3), 220–224 (2017)

    CrossRef  Google Scholar 

  4. Li, W., Xu, F., Li, Y., Hu, X., Bo, D., Yu, X.: Discussion on microwave-matter interaction mechanisms by in situ observation of “core-shell” microstructure during microwave sintering. Materials 9(3), 2–12 (2016)

    Google Scholar 

  5. Zabolotnyi, O., Pasternak, V., Andrushchak, I., Ilchuk, N., Svirzhevskyi, K.: Numerical simulation of the microstructure of structural-inhomogeneous materials. In: Ivanov, V., Trojanowska, J., Pavlenko, I., Zajac, J., Peraković, D. (eds.) DSMIE 2020. LNME, pp. 562–571. Springer, Cham (2020). https://doi.org/10.1007/978-3-030-50794-7_55

    CrossRef  Google Scholar 

  6. Yu, X., Xu, F., Dong, B., Li, W., Hu, X.: Discussion on the local magnetic force between reversely magnetized micro metal particles in the microwave sintering process. Metals-Open Access Metall. J. 7(2), 2–11 (2017)

    Google Scholar 

  7. Sulym, H., Pasternak, I., Pasternak, V.: Boundary element modeling of pyroelectric solids with shell inclusions. Mech. Mech. Eng. 22(3), 727–737 (2018)

    CrossRef  Google Scholar 

  8. Marchese, G., Aversa, A., Lorusso, M., Manfredi, D., Calignano, F.: Development and characterisation of aluminium matrix nanocomposites AlSi10Mg/MgAl2O4 by laser powder bed fusion. Metals 8(3), 1–12 (2018)

    CrossRef  Google Scholar 

  9. Carneiro, Í., Viana, F., Vieira, M., Fernandes, J., Simões, S.: EBSD analysis of metal matrix nanocomposite microstructure produced by powder metallurgy. Nanomaterials 9(6), 1–12 (2019)

    CrossRef  Google Scholar 

  10. Magnani, G., Galvagno, S., Sico, G., Portofino, S., Freda, C., Burresi, E.: Sintering and mechanical properties of β-SiC powder obtained from waste tires. J. Adv. Ceram. 5, 40–46 (2016)

    CrossRef  Google Scholar 

  11. Lytvynenko, A., et al.: Ensuring the reliability of pneumatic classification process for granular material in a rhomb-shaped apparatus. Appl. Sci. (Switzerland) 9(8), 1604 (2019). https://doi.org/10.3390/app9081604

    CrossRef  Google Scholar 

  12. Zhang, Q., Xu, L.S., Guo, X.: Improvement of mechanical properties, microscopic structures, and antibacterial activity by Ag/ZnO nanocomposite powder for glaze-decorated ceramic. J. Adva. Ceram. 6(3), 269–278 (2017). https://doi.org/10.1007/s40145-017-0239-z

    CrossRef  Google Scholar 

  13. Fathy, N., Ramadan, M., Hafez, K., Alghamdi, A., Halim, A.: Microstructure and induced defects of 6061 Al alloy after short times cyclic semi-solid heat treatment. MATEC Web Conf. 67(5), 1–6 (2016)

    Google Scholar 

  14. Samar Reda, A., Hamid, A., Menam, A., Salah Elden, I., Haytham Abdelrafea, E., Hassan Abdel, S.: Laser powder cladding of Ti-6Al-4V α/β alloy. Materials 10(11), 2–16 (2017)

    Google Scholar 

  15. Lin, Z., Tian-Shu, L., Tao-Tao, D., Tao-Tao, L., Feng, Q., Hong-Yu, Y.: Design of a new Al-Cu alloy manipulated by in-situ nanocrystals withsuperior high temperature tensile properties and its constitutive equation. Mater. Des. 181(2), 1–12 (2019)

    Google Scholar 

  16. Vijay Ponraj, N., Azhagurajan, A., Vettivel, S.: Microstructure, consolidation and mechanical behaviour of Mg/n-TiC composite. Alex. Eng. J. 55(2), 2077–2086 (2016)

    CrossRef  Google Scholar 

  17. Hu, W.J.: Effects of metal particles on cold spray deposition onto Ti-6Al-4V alloy via Abaqus/Explicit. J. Eng. Sci. 7(2), E19–E25 (2020). https://doi.org/10.21272/jes.2020.7(2).e4

    CrossRef  Google Scholar 

  18. Kubit, A., Faes, K., Jurczak, W., Bucior, M., Kluz, R.: Analysis of the properties of RFSSW lap joints of Alclad 7075–T6 aluminum alloy sheets under static and dynamic loads. Technologia i Automatyzacja Montażu 4, 4–13 (2020)

    Google Scholar 

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Zabolotnyi, O., Pasternak, V., Ilchuk, N., Huliieva, N., Cagáňová, D. (2021). Powder Technology and Software Tools for Microstructure Control of AlCu2 Samples. In: Ivanov, V., Trojanowska, J., Pavlenko, I., Zajac, J., Peraković, D. (eds) Advances in Design, Simulation and Manufacturing IV. DSMIE 2021. Lecture Notes in Mechanical Engineering. Springer, Cham. https://doi.org/10.1007/978-3-030-77719-7_58

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  • DOI: https://doi.org/10.1007/978-3-030-77719-7_58

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