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The physical nature of creep in crystalline bodies. A review

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References

  1. S. T. Konobeevskii, “On the theory of phase transformations,” Zh. eksperim. i teor. fiz., vol. 13, no. 6, 1943.

  2. F. R. N. Nabarro, “Deformation of crystals by the motion of single ions,” Rep. of Conf. on Strength of Solids (Univ. Bristol, 1947), L., Phys. soc., p. 75–90, 1948.

  3. C. Herring, “Diffusional viscosity of polycrystalline solids,” J. Appl. Phys., vol. 21, no. 5, p. 437, 1950.

    Google Scholar 

  4. I. M. Lifschitz, “On the theory of diffusion-viscous flow of polycrystalline bodies,” Zh. eksperim. i teor. fiz., vol. 44, no. 4, 1963.

  5. B. Ya. Pines, “Diffusion and mechanical properties of solids,” Uspekhi fiz. nauk, vol. 76, no. 3, 1962.

  6. R. C. Folweiler, “Creep behavior of porefree polycrystalline aluminum oxide,” J. Appl. Phys., vol. 32, no. 5, p. 773, 1961.

    Google Scholar 

  7. R. L. Coble and Y. H. Guerard, “Creep of polycrystalline aluminum oxide,” Amer. Ceram. Soc., vol. 46, no. 7, p. 353, 1963.

    Google Scholar 

  8. A. T. Price, H. A. Holl, and A. P. Greenough, “The surface energy and self-diffusion coefficient of solid iron above 1350°C,” Acta metallurgica, vol. 12, 1, 1964.

    Google Scholar 

  9. B. Ya. Pines, E. E. Badiyan, and V. P. Khizhkovyi, “Investigation of creep in single crystals of metals and alloys at high temperatures,” Fiz. tverdogo tela, vol. 5, no. 10, 1963.

  10. V. L. Indenbom and A. N. Orlov, “Physical theory of plasticity and strength,” Uspekhi fiz. nauk, vol. 76, no. 3, 1962.

  11. G. V. Govorkov, V. L. Indenbom, V. S. Popkov, and V. R. Regel, “On the dislocation theory of the initial stage of deformation of single crystals,” Fiz. tverdogo tela, vol. 6, no. 4, 1964.

  12. H. G. Van Bueren, Imperfections in Crystals [Russian translation], Izd. inostr. lit., 1962.

  13. J. D. Eshelby, “The interaction of kinks and elastic waves,” Proc. Roy. Soc., vol. 266, no. 1325, p. 222, 1962.

    Google Scholar 

  14. J. Lothe and J. P. Hirth, “Dislocation dynamics at low temperatures,” Phys. Rev., vol. 115, no. 3, p. 543, 1959.

    Google Scholar 

  15. J. Weertman, “Steady-state creep of crystals,” J. Appl. Phys., vol. 28, no. 19, 1957.

    Google Scholar 

  16. W. J. Tegart, “Activation energies for high temperature creep of polycrystalline magnesium,” Acta metallurgica, vol. 9, no. 6, p. 614, 1961.

    Google Scholar 

  17. J. Harper and J. E. Dorn, “Viscous creep of Al near melting point,” Acta metallurgica, vol. 5, no. 11, p. 654, 1957.

    Google Scholar 

  18. A. H. Cottrell, Dislocations and Plastic Flow in Crystals [Russian translation], Metallurgizdat, 1958.

  19. A. Seeger, “The mechanism of slip and work-hardening in face-centered cubic and hexagonal close-packed metals,” Collection: Dislocations and Mechanical Properties of Crystals [Russian translation], Izd. inostr. lit., p. 179, 1960.

  20. G. Shoeck, “Theory of creep,” Collection: Creep and Recovery [in Russian], Metallurgizdat, Moscow, pp. 227–258, 1961.

    Google Scholar 

  21. G. Shoeck and A. Seeger, Proc. Bristol Conf. on Defects in Crystalline Solids, Phys. Soc., London p. 340, 1955.

  22. J. Friedel, Internal Stresses and Fatigue in Metals, Symp. in Detroit, 1958, Elsevier Pub. Comp., p. 220, 1959.

  23. P. B. Hirsch, “Extended jog in dislocations in face-centered cubic metals,” Philos. Mag., vol. 7, no. 73, p. 67–93, 1962.

    Google Scholar 

  24. J. E. Dorn and N. Jaffe, “Effect of temperature on the creep of polycrystalline aluminum by the cross-slip mechanism,” Trans. Met. Soc. AIME, vol. 221, 229, 1961.

    Google Scholar 

  25. J. L. Lytton, L. A. Shepard, and J. E. Dorn, “The activation energies for creep of single aluminum crystals favorably oriented for (111) [101] slip,” Trans. Met. Soc. AIME, vol. 221, p. 229, 1961.

    Google Scholar 

  26. A. N. Orlov, “On the formation of defects during the motion of unsplit screw dislocations,” Fiz. tverdogo tela, vol. 5, no. 1, 1963.

  27. S. N. Zhurkov and T. P. Sanfirova, “The relation between the strength and creep of metals and alloys,” Zh. tekhn. fiz., vol. 28, no. 8, 1958.

    Google Scholar 

  28. S. N. Zhurkov, V. I. Betekhtin, and A. I. Slyutsker, “Misorientation of blocks and the strength of metals,” Fiz. tverdogo tela, vol. 5, no. 5, 1963.

  29. M. M. Myshlyaev, “On the dislocation structure of aluminum in creep,” Fiz. tverdogo tela, vol. 7, no. 2. 1965.

  30. I. E. Kurov and V. A. Stepanov, “Life of metals in torsion,” Fiz. tverdogo tela, vol. 4, no. 1, 1962.

  31. A. E. Johnson, “Complex-stress creep of metals,” Metallurg. Rev., vol. 5, 20, 1960.

    Google Scholar 

  32. T. C. Finnicar, “A comparison of tensile and compressive creep rates,” J. Inst. Metals, vol. 90, p. 368, 9, 1962.

    Google Scholar 

  33. N. F. Mott, “A discussion of some models of the rate-determining process in creep,” Creep and Fracture of Metals at High Temperatures, Proceedings of a Symposium held at NFL London, p. 21, 1956.

  34. P. Foltham, and J. D. Meakin, “Creep in face-centered cubic metals with special reference to copper,” Acta metallurgica, vol. 7, p. 614, 1959.

    Google Scholar 

  35. H. K. Birnbaum, “Deformation-produced point defects,” J. Appl. Phys., vol. 32, no. 7, p. 1403, 1961.

    Google Scholar 

  36. J. Weertman, “Theory of steady state creep based on dislocation climb,” J. Appl. Phys., vol. 26, p. 1213, 1955.

    Google Scholar 

  37. O. D. Sherby, “Factors affecting the high temperature strength of polycrystalline solids,” Acta metallurgica, vol 10, p. 135, 1962.

    Google Scholar 

  38. D. McLean, “The stress sensitivity of creep,” Structural Processes in Creep, 1962.

  39. B. Ya. Pines and A. F. Sirenko, “On the problem of regularities in the kinetics of metal creep at high temperatures,” Fiz. tverdogo tela, vol. 4, no. 10, 1962.

  40. A. L. Roitburd, A. L. Utevskii, and M. P. Usikov, “On the mechanism of plastic deformation in steady-state creep,” Dokl. AN SSSR, vol. 159, no. 2, 1964.

  41. M. P. Usikov and L. M. Utevskii, “Electron-microscope investigation of the dislocation structure of nickel and its alloys,” Probl. metalloved. i fiz. metallov, no. 8, 1964.

  42. E. R. Parker and J. Washburn, “On the role of boundaries in creep phenomena,” Collection: Creep and Recovery [in Russian], Metallurgizdat, Moscow, pp. 260–285, 1961.

    Google Scholar 

  43. T. Suzuki and H. Suzuki, “The dislocation net in deformation,” Sci. Repts. Res. Inst. Tohoku Univ. A. vol. 6, p. 573, 1954.

    Google Scholar 

  44. L. A. Voloshina and V. M. Rozenberg, “The effect of the orientation of single crystals of aluminum on creep,” Fiz. metallov i metallovedenie, vol. 13, 3, 1962.

    Google Scholar 

  45. L. A. Voloshina and V. M. Rozenberg, “Investigation of the creep of aluminum bicrystals,” Fiz. metallov i metallovedenie, vol. 12, no. 1, 1962.

  46. V. M, Rozenberg, “The effect of temperature and stress on the elementary components of deformation during creep in nickel,” Fiz. metallov i metallovedenie, vol. 15, no. 3, 1963.

  47. Ya. E. Geguzin, Macroscopic Defects in Metals [in Russian], Metallurgizdat, Moscow, 1962.

    Google Scholar 

  48. A. N. Orlov, “Long-time strength and steady-state creep of polycrystalline bodies,” Fiz. tverdogo tela, vol. 3, no. 2, 1961.

  49. A. H. Cornell, “Intercrystalline creep fracture,” Structural Processes in Creep, London, p. 1, 1962.

  50. V. A. Stepanov, I. E. Kurov, and V. V. Shpeizman, “Life of metals in torsion,” Fizika tverdogo tela, vol. 6, no. 9, pp. 2610–2617, 1964.

    Google Scholar 

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Indenbom, V.L., Mogilevskii, M.A., Orlov, A.N. et al. The physical nature of creep in crystalline bodies. A review. J Appl Mech Tech Phys 6, 155–163 (1965). https://doi.org/10.1007/BF00914391

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