Skip to main content
Log in

Phenomenological description of the dislocation mechanism of formation of nucleated defects in plastic deformation

  • Published:
Journal of Applied Mechanics and Technical Physics Aims and scope

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Literature cited

  1. Yu. N. Rabotnov, “Fracture due to creep,” Zh. Prikl. Mekh. Tekh. Fiz., No. 2 (1963).

  2. A. A. Il'yushin, “Theory of rupture strength,” Izv. Akad. Nauk SSSR, Mekh. Tverd. Tela, No. 3 (1967).

  3. O. G. Rybakina, “Phenomenological description of the fracture of metals with certain types of axisymmetric deformation,” Izv. Akad. Nauk SSSR, Mekh. Tverd. Tela, No. 6 (1969).

  4. V. V. Novozhilov, Prospects for the Development of a Phenomenological Approach to the Problem of the Fracture of Solids [in Russian], Kaunas. Politekhn. Inst. (1971).

  5. V. I. Betekhtin, V. I. Vladimirov, et al., “Plastic deformation and fracture of crystal-line solids. 2. Deformation and growth of microcracks,” Probl. Prochn., No. 8 (1979).

  6. V. V. Rybin, V. A. Likhachev, and A. N. Veregazov, “Intersection of grain boundaries and slip bands as a mechanism of tough grain-boundary fracture,” Fiz. Met. Metalloved.,36, No. 5 (1973).

  7. V. V. Rybin, A. A. Zisman, and I. M. Zhukovskii, “Formation of microcracks with developed plastic strain,” Probl. Prochn., No. 12 (1982).

  8. A. M. Kosevich, Dislocations in the Theory of Elasticity [in Russian], Naukova Dumka, Kiev (1978).

    Google Scholar 

  9. A. A. Il'yushin, Plasticity (principles of a general mathematical theory) [in Russian], Izd. Akad. Nauk SSSR, Moscow (1963).

    Google Scholar 

  10. Yu. I. Kadashevich, “Different variants of linear-tensor relations in the theory of plasticity,” Issled. Uprugosti Plast., No. 6 (1967).

  11. Yu. I. Kadashevich and V. V. Novozhilov, “Theory of creep of microinhomogeneous media,” Issled. Uprugosti Plast., No. 12 (1978).

  12. A. A. Movchan, “Scalar and tensor damage properties in plastic deformation,” Submitted to VINITI, No. 729–784, MAI, Moscow (1984).

    Google Scholar 

  13. A. A. Movchan, “Effect of strain history on the rate of damage accumulation in nonmonotonic elastoplastic loading,” Zh. Prikl. Mekh. Tekh. Fiz., No. 5 (1984).

  14. V. M. Goritskii and V. F. Terent'ev, Structure and Fatigue Fracture of Metals [in Russian], Metallurgiya, Moscow (1980).

    Google Scholar 

  15. D. W. Livesey and N. Ridley, “Cavitation and cavity sintering during compressive deformation of a superplastic microduplex,” Metal Sci.,16, No. 12 (1982).

  16. B. I. Beresnev, D. K. Bulychev, et al., “Closing of pores and cracks in copper during extrusion by a high-pressure fluid,” Fiz. Met. Metalloved.,18, No. 5 (1964).

  17. Ya. B. Geguzin, Microscopic Defects in Metals [in Russian], Metallurgiya, Moscow (1962).

    Google Scholar 

  18. B. Ya. Pines, “Endurance of metal plates loaded with a cyclic change in the tension direction,” Fiz. Met. Metalloved.,25, No. 1 (1968).

  19. Yu. G. Korotkikh, “Kinetic equations of the damage accumulation process in a material with nonisothermal viscoelastoplastic deformation,” in: Applied Problems of Strength and Ductility. Statics and Dynamics of Deformable Systems [in Russian], Gorkii (1982).

  20. V. I. Betekhtin, V. N. Savel'ev, and A. I. Petrov, “Kinetics of accumulation of microscopic discontinuities during stress-rupture and creep tests of aluminum,” Fiz. Met. Metalloved.,38, No. 4 (1974).

  21. V. L. Indenbom and A. N. Orlov, “Durability of a material under load and damage accumulation,” Fiz. Met. Metalloved.,43, No. 3 (1977).

  22. S. V. Serensen (ed.), Strength under Low-Cycle Loading. Principles of Methods of Calculation and Testing [in Russian], Nauka, Moscow (1975).

    Google Scholar 

  23. D. E. Martin, “An energy criterion for low-cycle fatigue,” J. Basic Eng.,83, No. 4 (1961).

  24. L. F. Coffin, “A study of the effect of cyclic thermal stress on a ductile metal,” Trans. ASME,76, No. 6 (1954).

  25. Ya. B. Fridman, T. K. Zilova, and N. I. Demina, Study of Plastic Deformation by the Method of Rolled-On Grids [in Russian], Oborongiz, Moscow (1962).

    Google Scholar 

  26. G. D. Del, “Plastic strain during nonmonotonic deformation,” Submitted to VINITI, No. 1813-82, Voronezh. Politekhn. In-t, Voronezh (1982).

    Google Scholar 

  27. A. A. Movchan, “Low-cycle fatigue during symmetrical nonproportional deformation,” Izv. Akad. Nauk SSSR, Mekh. Tverd. Tela, No. 3 (1983).

  28. K. Kanasava, K. J. Miller, and M. W. Brown, “Low-cycle fatigue under out-of-phase loading conditions,” J. Basic Eng.,99, No. 3 (1977).

Download references

Author information

Authors and Affiliations

Authors

Additional information

Translated from Zhurnal Prikladnoi Mekhaniki i Tekhnicheskoi Fiziki, No. 1, pp. 147–155, January–February, 1987.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Movchan, A.A. Phenomenological description of the dislocation mechanism of formation of nucleated defects in plastic deformation. J Appl Mech Tech Phys 28, 141–148 (1987). https://doi.org/10.1007/BF00918786

Download citation

  • Received:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00918786

Keywords

Navigation