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Effect of shock-wave exit angle on a free surface on fracture formation in metals

  • V. K. Golubev
  • S. A. Novikov
  • L. M. Sinitsyna
  • N. A. Yukina
Article
  • 23 Downloads

Keywords

Mathematical Modeling Mechanical Engineer Free Surface Industrial Mathematic Fracture Formation 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

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Literature cited

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    V. K. Golubev, S. A. Novikov, and L. M. Sinitsyna, “Material destruction by explosive loading with planar charges,” Zh. Prikl. Mekh. Tekh. Fiz., No. 2 (1981).Google Scholar
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    V. K. Golubev, S. A. Novikov, and L. M. Sinitsyna, “A method for fracture testing materials,” Otkrytiya, Izobret., Promyshl. Obraztsy. Tov. Zn., No. 34 (1981).Google Scholar
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    V. K. Golubev, S. A. Novikov, et al., “Effect of temperature on critical conditions for fracture destruction of metals,” Zh. Prikl. Mekh. Tekh. Fiz., No. 4 (1980).Google Scholar
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    T. W. Barbee, L. Seaman, et al., “Dynamic fracture criteria for ductile and brittle metals,” J. Mater.,7, No. 3 (1972).Google Scholar
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    V. K. Golubev, S. A. Novikov, et al., “Fracture failure mechanisms in St. 3 and 12Kh18-N10T steels in the temperature range −196 to 800°C,” Probl. Prochn., No. 5 (1981).Google Scholar
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    A. A. Deribas, The Physics of Explosive Hardening and Welding [in Russian], Nauka, Novosibirsk (1980).Google Scholar

Copyright information

© Plenum Publishing Corporation 1984

Authors and Affiliations

  • V. K. Golubev
    • 1
  • S. A. Novikov
    • 1
  • L. M. Sinitsyna
    • 1
  • N. A. Yukina
    • 1
  1. 1.Moscow

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