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Energy consumption for creep fracture of metallic materials

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Abstract

The energy conservation law is applied to formulate the ductile and brittle creep fracture criterion for metallic materials. The criterion contains a summary of heat and latent energies. Assuming that the heat energy is given out so it has no effect on the fracture process, the ductile creep fracture criterion is simplified. To take into account the evaluation of the damage state of materials the compressibility condition is introduced and the brittle creep fracture law is formulated.

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References

  1. Hoff N.J.: The necking and rupture of rods subjected to constant tensile loads. J. Appl. Mech. 20, 105–108 (1953)

    Google Scholar 

  2. Taylor G.I., Qunney H.: The latent energy remaining in a metal after cold working. Proc. Roy. Soc. (London) Ser. A 143, 307–326 (1934)

    Article  Google Scholar 

  3. Bolshanina, M.A., Panin V.E.: The Latent Deformation Energy. Issledovanie po fisike tverdogo tela, pp. 193–234. Moscow: USSR Academy of Science (1957) (in Russian)

  4. Dillon O.W.: The heat generated during torsional oscillations of copper tubes. Int. J. Solids Struct. 2, 181–204 (1966)

    Article  Google Scholar 

  5. Bezjazichni, V.F., Drapkin, B.M., Prokofev, M.A., Timofeev, M.V.: Investigation of latent deformation energy stored in metallic materials during the indentation of a spherical indenter. Zavod. Lab. 71(4), 32–35 (2005) (in Russian)

    Google Scholar 

  6. Oliferuk W., Maj M., Raniecki B.: Experimental analysis of energy storage rate components during tensile deformation of polycrystals. Mater. Sci. Eng. A 374, 77–81 (2004)

    Article  Google Scholar 

  7. Plechov, O., Saintier, N., Naimark, O.: Experimental investigation of the processes of energy storage and dissipation in iron during the elastic plastic deformation. J. Tech. Phys. 9, 135–137 (2007) (in Russian)

    Google Scholar 

  8. Sosnin, O.V., Gorev, B.V., Nikitenko, A.F.: The Energy Version of the Creep and Creep Fracture Theory. Novosibirsk. Siberian branch of the USSR Academy of Science (1986) (in Russian)

  9. Katz, Sh.N.: Creep fracture investigations of carbon steel tubes. Teploenerg. 11, 37–40, (1955) (in Russian)

  10. Rabotnov, Y.N.: Creep of Elements of Structures. Nauka, Moscow (1966) (in Russian)

  11. Arutyunyan, R.A.: On the interrelation between the rhelogy and fracture of polymer materials. Mech. Compos. Mater. 4, 583–586 (1983) (in Russian)

    Google Scholar 

  12. Arutyunyan, R.A.: The Problem of Deformation Aging and Prolonged Fracture in Material Sciences. S.-Petersburg University Press, Sankt-Petersburg (2004) (in Russian)

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Correspondence to Robert A. Arutyunyan.

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Arutyunyan, R.A. Energy consumption for creep fracture of metallic materials. Acta Mech Sin 24, 469–472 (2008). https://doi.org/10.1007/s10409-008-0166-x

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