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DYNAMIC PROPERTIES OF LOW-CARBON STEEL AFTER LONG-TERM STORAGE

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Journal of Applied Mechanics and Technical Physics Aims and scope

Abstract

Dynamic properties of low-carbon steel are investigated using the Kolsky method (the split Hopkinson pressure bar method). Changes in the properties of the steel after 50 years of storage are determined, and the destroyed samples are subjected to metallographic studies. The fractal dimension of the fracture contours is determined. It is shown that, the long-term storage of steel introduces no significant changes in its properties.

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REFERENCES

  1. G. G. Savenkov, “Mechanical Properties of Copper under Dynamic Load," in Copper Alloys: Preparation, Properties, and Applications (Nova Sci. Publ., Inc, New York, 2011).

  2. Ch. Weinong and S. Bo, Split Hopkinson (Kolsky) Bar: Design, Testing, and Application (Mechanical Engineering Series (Springer, Heidelberg–London–New York–Dordrecht, 2010).

  3. A. M. Bragov, L. A. Igumnov, A. Yu. Konstantinov, and A. K. Lomunov, “A Combined Approach to Dynamic Testing of Structural Materials," in Hopkinson Centenary Conf., Cambridge (UK), Sept. 9–11, 2014 (Fraunhofer Inst. for High-Speed Dynamics, Freiburg, 2014).

  4. N. N. Davidenkov, Dynamic Testing of Metal(Gosizdat, Moscow–Leningrad, 1929) [in Russian].

  5. B. A. Drozdovskii, L. V. Prokhodtseva, I. A. Zhegina, and N. S. Gerchikova, “Effect of Deformation Rate and Temperature Drop on the Crack Resistance of Metallic Materials," Fiz.-Khim. Mekh. Mater., No. 6, 26–31 (1985).

  6. B. Mandelbrot, C.J.G. Evertsz, and M.C. Gutzwiller,Fractals and Chaos: The Mandelbrot Set and Beyond(Springer Science & Business Media, 2004).

  7. V. S. Ivanova, Synergetics: Strength and Fracture of Metallic Materials (Cambridge Int. Sci. Publ. Ltd, 1998).

  8. G. G. Savenkov, B. K. Barakhtin, K. A. Rudometkin, and N. V. Lebedeva, “Dynamic Cracking Resistance of Metallic Materials during Rapid Propagation of a Self-Similar Crack," Zh. Tekh. Fiz.84 (7), 52–57 [(Tech. Phys. 59 (7), 997–1002 (2014)].

  9. V. S. Ivanova, A. S. Balankin, I. Zh. Bunin, and A. A. Oksogoev,Synergetics and Fractals in Materials Science (Nauka, Moscow, 1994) [in Russian].

  10. V. Y. Milman, N. A. Stelmashenko, and R. Blumenfeld, “Fracture Surfaces: A Critical Review of Fractal Studies and a Novel Morphological Analysis of Scanning Microscopy Measurements," Progr. Mater. Sci. 38, 425–474 (1994).

  11. A. V. Kudrya, A. V. Bocharova, and G. Yu. Lagovskaya, “Informative Value of Viscous Fracture Mesogeometry for Grading Steel by Viscosity," in Relevant Problems in Strength, Proc. of the 35th Seminar, Pskov, September 15–18, 1999 (Pskov State Univ., Pskov, 1999).

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Correspondence to T. I. Sycheva.

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Translated from Prikladnaya Mekhanika i Tekhnicheskaya Fizika, 2021, Vol. 62, No. 1, pp. 119–124.https://doi.org/10.15372/PMTF20210113.

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Bragov, A.M., Kuznetsov, A.V., Savenkov, G.G. et al. DYNAMIC PROPERTIES OF LOW-CARBON STEEL AFTER LONG-TERM STORAGE. J Appl Mech Tech Phy 62, 105–109 (2021). https://doi.org/10.1134/S0021894421010132

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  • DOI: https://doi.org/10.1134/S0021894421010132

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