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Experimental-and-Informational Technology for Studying Carbon Fiber-Reinforced Plastic Structures for Tightness and Strength by Internal Pressure

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Strength of Materials Aims and scope

Experimental-and-informational technology for studying tubular structures of rocket-and-space equipment made of carbon plastic under the action of internal overpressure was developed in this study. A comparative assessment of the tightness and strength of structures made of six types of polymer composite materials, in particular, modified by treatment with high-energy plasma flows of dielectric barrier discharge fibers in acrylic acid (C3H4O2) and allylamine (C3H7N) media was performed. The applicability of modification treatment of composite polymeric materials was proved, which allows an increase in their strength characteristics by up to 25% compared with the original material.

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References

  1. S. N. Konyukhov, Rockets and Spacecraft of Yuzhnoye Design Office [in Russian], ColorGraph & Tandem-U LLC, Dnepropetrovsk (2001).

    Google Scholar 

  2. V. A. Kovalenko and A. V. Kondrat’ev, “Application of polymeric composite materials in products of rocket and space technology as the reserve for improving its mass and functional efficiency”, Aviats.-Kosm. Tekhn. Tekhnol., No. 5 (82), 14–20 (2011).

  3. A. V. Sidoruk, D. A. Popov, A. S. Zadoya, et al., “Experimental study of a linerless fuel tank from polymer composite materials”, Kosm. Tekhn. Raket. Vooruzh. (Space Technology. Missile Armaments), No. 1 (119), 90–98 (2020), https://doi.org/10.33136/stma2020.01.090.

  4. A. Salenko, P. Melnychuk, E. Lashko, et al., “ Ensuring the functional properties of responsible structural plastic elements by means of 3-d printing”, Eastern-European Journal of Enterprise Technologies, 5, No. 1 (107), 18–28 (2020), https://doi.org/10.15587/1729-4061.2020.211752.

  5. M. A. Bondar’, A. E. Kashanov, A. A. Kolokolov, et al., “Quality management of Yuzhnoye SDO projects in the space domain”, Kosm. Tekhn. Raket. Vooruzh. (Space Technology. Missile Armaments), No. 1 (103), 86–92 (2020).

  6. M. A. Bondar’, A. E. Kashanov, and V. P. Malaichuk, “Mathematical support for the quality management system of rocket and space products”, Aviats.-Kosm. Tekhn. Tekhnol., No. 3 (120), 94–101 (2015).

  7. T. A. Man’ko, I. A. Gusarova, O. P. Romenskaya, et al., “Experimental studies of the properties of carbon composites on tubular models”, Visn. Dnipro Univ. Ser. Raket.-Kosm. Tekhn. (Journal of Rocket-Space Technology), 26, No. 4, 59–63 (2018), https://doi.org/10.15421/451811.

  8. A. Vanhulsel, E. Van Hoof, and J. Cools, Apparatus for Indirect Atmospheric Pressure Plasma Processing, US Patent App. 15/335,992 (2017).

  9. S. Put, C. Bertels, and A. Vanhulsel, “Atmospheric pressure plasma treatment of polymeric powders”, Surf. Coat. Tech., 234, 76–81 (2013).

    Article  CAS  Google Scholar 

  10. V. O. Kollath, S. Put, S. Mullens, et al., “Atmospheric pressure plasma as an activation step for improving protein adsorption on hydroxyapatite powder”, Plasma Process. Polym., 12, No. 6, 594–601 (2015).

    Article  Google Scholar 

  11. J. Vanneste, T. Ennaert, A. Vanhulsel, and B. Sels, “Unconventional pretreatment of lignocellulose with low-temperature plasma”, ChemSusChem, 10, No. 1, 14–31 (2016).

    Google Scholar 

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Correspondence to I. I. Derevyanko.

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Translated from Problemy Mitsnosti, No. 3, pp. 49 – 58, May – June, 2022.

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Derevyanko, I.I., Samusenko, O.A., Drozdov, O.V. et al. Experimental-and-Informational Technology for Studying Carbon Fiber-Reinforced Plastic Structures for Tightness and Strength by Internal Pressure. Strength Mater 54, 387–395 (2022). https://doi.org/10.1007/s11223-022-00414-2

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  • DOI: https://doi.org/10.1007/s11223-022-00414-2

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