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Procedure for the evaluation of the accumulation of defects in metallic structural materials under complex elastoplastic loading

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Abstract

Within framework of the continual fracture mechanics, we describe the engineering approach to the assessment of scattered microdamage accumulation kinetics in metallic materials under elastoplastic loading conditions in case of plane stressed state. Automatized experimental stand and the respective investigation technique are discussed. The stand has been developed based on modification of the UMÉ-10T electromechanic test machine. State-of-the-art computer technologies and microprocessing hardware are incorporated in the stand automation. We present the technique of experimental assessment of damage accumulation kinetics in metallic structural materials under complex elastoplastic loading conditions with account of two different fracture (cleavage and shear) processes, which technique is based on measuring the specific electric resistance of the specimen.

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References

  1. V. T. Troshchenko, A. Ya. Krasovskii, and V. A. Strizhalo, Strain and Fracture Resistances of Materials [in Russian], Vol. 2, Naukova Dumka, Kiev (1994).

    Google Scholar 

  2. N. A. Makhutov, A. Z. Vorob’ev, and M. M. Gadenin, Strength of Structures under Low-Cycle Loading [in Russian], Nauka, Moscow (1983).

    Google Scholar 

  3. Y. Lemaitre, “Coupled elasto-plasticity and damage constitutive equations,” Comp. Meth. Appl. Mekh. Eng., 51, 31–49 (1985).

    Google Scholar 

  4. L. M. Kachanov, “On the time to fracture under conditions of creep,” Izv. AN SSSR. Otd. Tekh. Nauk, No. 8, 26–35 (1958).

  5. Yu. N. Rabotnov, Creep in Structural Elements [in Russian], Nauka, Moscow (1966).

    Google Scholar 

  6. D. Lemaitre, “Continual model of damage used for the numerical analysis of fracture of plastic materials,” Teor. Osn. Inzh. Rasch., 107, No. 1, 90–98 (1985).

    Google Scholar 

  7. A. P. Gusenkov and P. I. Kotov, Low-Cycle Fatigue under Nonisothermal Loading [in Russian], Mashinostroenie, Moscow (1983).

    Google Scholar 

  8. A. G. Kazantsev, “Calculation of low-cycle fatigue under nonproportional loading conditions,” Strength Mater., 21, No. 6, 735–741 (1989).

    Article  Google Scholar 

  9. A. A. Movchan, “On low-cycle fatigue under conditions of disproportional symmetric deformation,” Izv. AN SSSR. Mekh. Tverd. Tela, No. 3, 102–108 (1983).

  10. A. N. Romanov, Fracture under Low-Cycle Loading [in Russian], Nauka, Moscow (1988).

    Google Scholar 

  11. Z. Mroz, “Hardening and accumulation of defects in metals under monotonic and cyclic loading,” Teor. Osn. Inzh. Rasch., 105, No. 2, 44–50 (1983).

    Google Scholar 

  12. A. A. Lebedev, N. G. Chausov, I. O. Baginich, and S. A. Nedoseka, “Systematic evaluation of the damage to a material during plastic deformation,” Strength Mater., 28, No. 5, 347–352 (1996).

    Article  Google Scholar 

  13. K. Golos, “Energetic formulation of fatigue strength criterion,” Arch. Bud. Maszyn, 35, No. 5, 5–15 (1998).

    Google Scholar 

  14. N. I. Bobyr’ and T. B. Ponomarenko, “Equation of state of structural materials under low-cycle loading,” Progr. Tekhn. Tekhnolog. Mashynobud., No. 2, 58–67 (1998).

  15. D. F. Socie, P. Kurath, and J. A. Koch, “Multiaxial fatigue damage parameter, biaxial and multiaxial fatigue,” in: Mechanical Engineering Publications, London (1989), pp. 535–550.

  16. Yu. G. Korotkikh, “A description of the processes of accumulation of damages of a material in nonisothermal viscoplastic deformation,” Strength Mater., 17, No. 1, 21–26 (1985).

    Article  Google Scholar 

  17. V. P. Golub, “Nonlinear mechanics of continual damage and its application to the problems of creep and fatigue,” Prikl. Mekh., 36, No. 3, 31–59 (2000).

    Google Scholar 

  18. A. A. Movchan, On Low-Cycle Fatigue for Complex and, in Particular, Disproportional Paths of Plastic Deformation [in Russian], Moscow (1980), Deposited at VINITI, No. 2176-80.

  19. D. F. Socie, “Models of fracture under conditions of multiaxial fatigue,” Teor. Osn. Inzh. Rasch., No. 3, 9–20 (1988).

  20. N. A. Makhutov, M. M. Gadenin, D. A. Gokhfel’d, et al., Equation of State under Low-Cycle Loading [in Russian], Nauka, Moscow (1981).

    Google Scholar 

  21. S. R. Bodner and I. Lindholm, “A criterion of increment of damage for the time-dependent fracture of materials,” Teor. Osn. Inzh. Rasch., No. 2, 51–58 (1976).

  22. V. V. Zhu and S. Cescotto, “A fully coupled elasto-visco-plastic damage theory for anisotropic materials,” Int. J. Solids Struct., 32, No. 11, 1607–1641 (1995).

    Google Scholar 

  23. V. T. Troshchenko, A. A. Lebedev, V. A. Strizhalo, et al., Mechanical Behavior of Materials under Different Types of Loading [in Russian], Logos, Kiev (2000).

    Google Scholar 

  24. R. A. Arutyunyan, “Fracture criteria under creep conditions,” Strength Mater., 14, No. 9, 1205–1208 (1982).

    Article  Google Scholar 

  25. M. W. Brown, N. Gao, and K. J. Miller, “Fatigue-life predictions including the effects of hold time and multiaxial loads on crack-coalescence behavior,” Strength Mater., 32, No. 6, 502–516 (2000).

    Article  Google Scholar 

  26. N. I. Bobyr’, “Generalized model of damage to structural materials under complex low-cycle loading,” Strength Mater., 32, No. 5, 480–486 (2000).

    CAS  Google Scholar 

  27. A. P. Grabovskii, A. V. Timoshenko, O. M. Maslo, and A. P. Khalimon, “Investigation of the kinetics of accumulation of defects for structural materials in the complex stressed state,” Vestn. NTUU “KPI. Mashinostroenie”, No. 44, 43–47 (2003).

  28. N. I. Bobyr’, A. P. Grabovskii, and A. V. Timoshenko, A Method for the Determination of the Kinetics of Fracture of Materials in the Process of Their Elastoplastic Deformation [in Ukrainian], Declarative Patent, No. 65499A 7G01N3/08, Publ. on 15.03.2004, Bul. No. 3.

  29. V. N. Maksak and G. A. Doshchinskii, “A procedure of investigation of large plastic strains under simple loading, Izv. Tomsk Politekhn. Inst., 173, 3–9 (1970).

    Google Scholar 

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Translated from Problemy Prochnosti, No. 1, pp. 128–137, January–February, 2006.

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Bobyr’, N.I., Grabovskii, A.P., Timoshenko, A.V. et al. Procedure for the evaluation of the accumulation of defects in metallic structural materials under complex elastoplastic loading. Strength Mater 38, 92–98 (2006). https://doi.org/10.1007/s11223-006-0020-y

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