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Connection between structural changes and mechanical behavior of metal during creep. Creep equations

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Literature cited

  1. B. A. Vershok and A. L. Roitburd, “Unconservative motion of a set of dislocations and high temperature strain. III. Dislocation models for steady creep,” Fiz. Met. Metalloved.,35, No. 4, 706–714 (1973).

    Google Scholar 

  2. B. A. Movchan, L. M. Nerodenko, O. G. Kasatkin, and E. V. Dabizha, “A structural and phenomenological approach to describing high temperature creep of solids,” Probl. Prochn., No. 9, 3–9 (1974).

    Google Scholar 

  3. V. V. Levitin, “Steady creep rate. I. Calculation and comparison with experiments for nickel,” Fiz. Met. Metalloved.,32, No. 4, 861–870 (1971).

    Google Scholar 

  4. R. A. Lagneborg, “Modified recovery-creep model and its evaluation,” Met. Sci. J.,6, No. 7, 127–133 (1972).

    Google Scholar 

  5. A. Orlova and J. Cadek, “Some substructural aspects of high temperature creep in metals,” Phil. Mag.,28, No. 4, 891–897 (1973).

    Google Scholar 

  6. P. N. Okrainets and V. K. Pishchak, “Effect of stress on substructural changes during high temperature creep of Cu + 10 at. %Ni allpy,” Ukr. Fiz. Zh.,24, No. 8, 1183–1187 (1979).

    Google Scholar 

  7. P. N. Okrainets, “Study of structural changes in nickel during creep,” Author's Abstract of Candidate's Dissertation Physicomathematical Sciences, Kiev (1961).

  8. G. Ya. Kozyrskii, P. N. Okrainets, and V. K. Pishchak, “Study of structural changes of vanadium during extension with a constant loading rate,” Fiz. Met. Metalloved.,41, No. 3, 614–620 (1976).

    Google Scholar 

  9. I. D. Gornaya, G. A. Petrunin, and V. K. Pishchak, “Comparison of electron microscope and x-ray data for changes in dislocation density during straining of a copper-nickel alloy,” Fiz. Met. Metalloved.,46, No. 2, 427–429 (1978).

    Google Scholar 

  10. J. Weertman, “Dislocation climb theory of steady-state creep,” Trans. ASM,61, 681–694 (1968).

    Google Scholar 

  11. M. M. Myshlyaev, W. A. Stepanov, and V. V. Shpeizman, “Change in creep mechanism of fcc metals at the transition from low to high temperature,” Phys. Status Solidi (a),8, No. 2, 393–402 (1971).

    Google Scholar 

  12. S. K. Mitra and D. McClean, “Work hardening and recovery in creep,” Proc. R. Soc.,295, A, 288,299 (1966).

    Google Scholar 

  13. J. Hausselt and W. Blum, “Dynamic recovery during and after steady state deformation of Al-11 wt.% Zn,” Acta Met.,24, No. 11, 1027–1039 (1976).

    Google Scholar 

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Translated from Problemy Prochnosti, No. 3, pp. 12–16, March, 1980.

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Okrainets, P.N., Pishchak, V.K. Connection between structural changes and mechanical behavior of metal during creep. Creep equations. Strength Mater 12, 268–273 (1980). https://doi.org/10.1007/BF01129070

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