Skip to main content
Log in

Experimental investigation of the dynamic behavior of tubular samples of composite fiber materials at the limit of carrying capacity

  • 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. K. K. Chamis and G. T. Smit, “Effect of an external medium and high strain rate on composite materials employed in motor constructions,” Aérokosmich. Tekhnika, No. 9 (1984).

  2. I. M. Daniel, R. H. Labedz, and T. Liber, “New method for testing composites at very high strain rates,” Exper. Mech.,11, No. 2 (1981).

  3. V. A. Ryzhanskii, V. N. Mineev, A. G. Ivanov, et al., “Failure of cylindrical glass epoxy shells filled with water under an internal pressure pulse,” Mekh. Polim., No. 2 (1978).

  4. V. I. Tsypkin, V. N. Rusak, A. T. Shitov, and A. G. Ivanov, “Deformation and failure of cylindrical shells made of glass epoxy under an internal impulsive load,” Mekh. Kompozit. Mater., No. 2 (1981).

  5. A. G. Fedorenko, V. I. Tsypkin, A. G. Ivanov, et al., “Characteristic features of dynamical deformation and failure of cylindrical glass plastic shells under internal impulsive load,” Mekh. Kompozit. Mater., No. 1 (1983).

  6. A. G. Ivanov and V. I. Tsypkin, “Deformation and failure of glass plastic shells under extreme impulsive loads,” Mekh. Kompozit. Mater., No. 3 (1987).

  7. V. I. Tsypkin, V. N. Rusak, A. G. Ivanov, et al., “Deformation and failure of double layer metal-plastic shells under an internal impulsive load,” Mekh. Kompozit. Mater., No. 5 (1987).

  8. A. G. Fedorenko, V. I. Stypkin, M. A. Syrunin, et al., “Behavior of composite shells with highly elastic complexing agent under an internal impulsive load,” Mekh. Kompozit. Mater., No. 2 (1988).

  9. Yu. M. Tarnopol'skii and T. Ya. Kintsis, Methods of Static Tests of Reinforced Plastics [in Russian], Khimiya, Moscow (1975).

    Google Scholar 

  10. P. Dewhurt, J. B. Hawkyard, and W. Johnson, “A theoretical and experimental investigation of dynamic circular cylindrical expansions in metals,” J. Mech. Phys. Solids,22, No. 4 (1974).

  11. A. T. Shitov, V. N. Mineev, 0. A. Kleshchevnikov, et al., “Wire gauge for continuous recording of large deformations under dynamical loading of structures,” Fiz. Goreniya Vzryva, No. 2 (1976).

  12. S. V. Stepanenko, A. V. Aseev, and G. E. Makarov, “Investigation of the behavior of samples made of composite materials under the action of an impulsive load” in: Abstracts of Reports at the Siberian School on Current Problems in the Mechanics of Deformable Solids, Yakutsk (1990).

  13. S. V. Stepanenko, A. V. Aseev, and G. E. Makarov, “Dynamics of failure and crack formation in samples of composite materials with different strong base” in: Abstracts of Reports at the 3rd All-Union Symposium on the Mechanics of Failure, Part 3, Kiev (1990).

  14. S. V. Stepanenko, A. V. Aseev, and G. E. Makarov, “Experience in synthesizing combined fiber material oriented toward use in structures intended for containing strong impulsive pressure” in: Abstracts of Reports at a Republic Seminar on Strength and Shape Change of Structural Elements under the Action of Dynamical Physicomechanical Fields, Kiev (1990).

  15. S. A. Ambartsumyan, Theory of Anisotropic Plates [in Russian], Nauka, Moscow (1987).

    Google Scholar 

  16. F. A. Baum, L. P. Orlenko, K. P. Stanyukovich, et al., Physics of Explosions [inRussian], Nauka, Moscow (1975).

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Additional information

Translated from Prikladnaya Mekhanika i Tekhnicheskaya Fizika, No. 3, pp. 140–147, May–June, 1992.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Aseev, A.V., Makarov, G.E. & Stepanenko, S.V. Experimental investigation of the dynamic behavior of tubular samples of composite fiber materials at the limit of carrying capacity. J Appl Mech Tech Phys 33, 447–454 (1992). https://doi.org/10.1007/BF00851744

Download citation

  • Received:

  • Revised:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00851744

Keywords

Navigation