Soviet Powder Metallurgy and Metal Ceramics

, Volume 30, Issue 7, pp 562–566 | Cite as

Joint effects of various flow mechanisms in a porous polycrystalline body in hot pressing. Part 1. General theory

  • M. S. Koval'chenko
Theory and Technology in Sintering, Heat Treatment, and Thermochemical Processing


General Theory Joint Effect Flow Mechanism Polycrystalline Body Porous Polycrystalline 
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Literature cited

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    G. Friedel, Dislocations [Russian translation], Mir, Moscow (1967).Google Scholar
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    M. S. Koval'chenko, “Hot-pressing consolidation kinetics for covalent-material powders,” Poroshk. Metall., No. 5, 19–24 (1990).Google Scholar
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    G. P. Poirier, High-Temperature Plasticity in Crystalline Solids [Russian translation], Metallurgiya, Moscow (1982).Google Scholar
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    Van Buren, Defects in Crystals [Russian translation], IL, Moscow (1962).Google Scholar
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    A. Cottrell, The Mechanical Properties of Matter, Wiley, New York (1964).Google Scholar
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    D. S. Wilkinson and M. F. Ashby, “Pressure sintering by power-law creep,” Acta Met.,23, No. 11, 1277–1285 (1975).Google Scholar
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    M. S. Koval'chenko, The Theoretical Principles of Hot Pressure Working for Porous Materials [in Russian], Naukova Dumka, Kiev (1980).Google Scholar
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    E. Arzt, M. F. Ashby, and K. E. Easterling, “Practical applications of hot isostatic pressing diagrams: four case studies,” Met. Trans.,14A, No. 2, 211–221 (1983).Google Scholar
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    T. D. Shermergor, Elasticity Theory for Microscopically Inhomogeneous Media [in Russian], Nauka, Moscow (1977).Google Scholar

Copyright information

© Plenum Publishing Corporation 1992

Authors and Affiliations

  • M. S. Koval'chenko
    • 1
  1. 1.Materials Science InstituteAcademy of Sciences of the Ukrainian SSRUSSR

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