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Titanium-Alloy Metal Matrix Composites Produced by Low-Temperature Superplastic Pressure Welding

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Abstract

The production of strong metal matrix composites by pressure welding at low temperatures is considered. Failure of the composite is analyzed. It is found that the strength of a composite produced at 700°C may exceed that of a composite produced at 900°C.

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REFERENCES

  1. Kaibyshev, O.A., Sverkhplastichnost’ promyshlennykh splavov (Superplasticity of Industrial Alloys), Moscow: Metallurgiya, 1984.

  2. Gel’man, A.A., Anur’ev, K.D., Semenova, N.M., and Zaitseva, L.M., Effect of defects on the impact toughness of welded joints from VT6 alloy, Svar. Proizvod., 1985, no. 10, pp. 16–18.

  3. Karakozov, E.S., Svarka metallov davleniem (Welding of Metals by Pressure), Moscow: Mashinostroenie, 1986.

  4. Comley, P.N., Lowering the heat—The development of reduced SPF temperature titanium alloys for aircraft production, Mater. Sci. Forum, 2004, vols. 447–448, pp. 233–238.

    Article  Google Scholar 

  5. Lutfullin, R.Ya., Kaibyshev, O.A., Valiakhmetov, O.R., et al., Joining of nanocrystalline titanium alloys in solid state, Perspekt. Mater., 2003, no. 4, pp. 21–25.

  6. Nazarov, A.A. and Mulyukov, R.R., Nanostructured materials, in Handbook of Nanoscience, Engineering and Technology, Boca Raton: CRC Press, 2002, pp. 45–47.

    Google Scholar 

  7. Wright, E.S. and Levitt, A.P., Metallic matrix composites, in Composite Materials, Broutman, J.L. and Krock, R.H., Eds., New York: Academic, 1974, vol. 4.

    Google Scholar 

  8. Sokolovskaya, E.M. and Guzei, L.S., Fizikokhimiya kompozitnykh materialov (Physical Chemistry of Composite Materials), Moscow: Mosk. Gos. Univ., 1978.

  9. Lutfullin, R.Ya., Mukhametrakhimov, M.Kh., Klassman, P.A., and Astanin, V.V., Possible manufacture of a nanostructured sheet from VT6 titanium alloy by isothermal rolling, Perspekt. Mater., 2013, no. 15, p. 152.

  10. Kazachkov, I.V. and Berdin, V.K., Assessment of the quality of diffusion joining of thin-sheet metallic materials, Zavod. Lab., 1989, vol. 55, no. 7, pp. 82–84.

    Google Scholar 

  11. Lutfullin, R.Ya., Mukhametrakhimov, M.Kh., and Kruglov, A.A., Pore formation in VT6 titanium alloy during deformation under low-temperature superplasticity, Pis’ma Mater., 2013, vol. 7, no. 2, pp. 292–294.

    Google Scholar 

  12. Kaibyshev, O.A., Lutfullin, R.Ya., and Berdin, V.K., The formation mechanism of a solid-phase joining in a state of superplasticity, Dokl. Akad. Nauk SSSR, 1991, vol. 319, no. 3, pp. 615–618.

    Google Scholar 

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Funding

Financial support was provided under state program AAAA-A17-117041310221-5 for the encouragement of fundamental research at the Institute of Superplasticity of Metals, Russian Academy of Sciences.

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Correspondence to M. Kh. Mukhametrakhimov.

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Translated by B. Gilbert

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Mukhametrakhimov, M.K. Titanium-Alloy Metal Matrix Composites Produced by Low-Temperature Superplastic Pressure Welding. Russ. Engin. Res. 41, 315–319 (2021). https://doi.org/10.3103/S1068798X21040171

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  • DOI: https://doi.org/10.3103/S1068798X21040171

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