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Prediction of Strength Properties of Elastic Polymeric Composite Materials Based on Polypropylene Woven Tapes

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Fibre Chemistry Aims and scope

Polymer composite materials are widely used in various fields of human activity. Their properties are largely determined by the properties of their components, in particular, reinforcing textile materials. In this study, the task is to obtain and investigate the properties of a composite based on reinforcing textiles – polypropylene fabric. The task was solved by theoretical modeling of the mechanical properties of a polymer composite material with subsequent verification of the prediction results by experimental studies. Experimental verification of the mechanical properties of the composite obtained by the technology developed by the authors showed a sufficiently high degree of coincidence of the results for various mechanical properties of the composite.

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References

  1. N. I. Baurova and V. A. Zorin, Use of Polymer Composite Materials in the Manufacture and Repair of Machines. Textbook [in Russian], MADI, Moscow (2016).

  2. M. L. Kerber, V. M. Vinogradov, et al., Polymer Composite Materials: Structure, Properties, Technology. Textbook [in Russian], Professiya, St. Petersburg (2008).

  3. A. C. Long (ed.), Design and Manufacture of Textile Composites, Woodhead Publishing Ltd., Cambridge (2015).

    Google Scholar 

  4. B. Harris, Engineering Composite Materials, the Institute of Materials, London (1999).

  5. K. E. Perepelkin, Reinforcing Fibers and Fibrous Polymer Composites [in Russian], Nauchnye Osnovy i Tekhnologii, St. Petersburg (2009).

    Google Scholar 

  6. V. V. Vasiliev and E. V. Morozov, Mechanics and Analysis of Composite Materials, Elsevier Science, Oxford, UK (2001).

    Google Scholar 

  7. C. Conway, V. Carvelli, G. Ventura, and C. Poggi, 3D Reinforcement of Composite Materials, Thesis for the Degree in Materials Engineering, Polytecnico di Milano, Milan (2011).

  8. R. F. Gibson, Principles of Composite Material Mechanics, Third Edition, CRC Press, Taylor & Francis Group, Nevada (2011).

    Google Scholar 

  9. R. M. Jones, Mechanics of Composite Material, Second Edition, Polytechnic Institute and State University, Virginia (1999).

    Google Scholar 

  10. N. I. Kol’tsov and F. A. Efimov, “Polyurethanes,” Sorosovsk. Obrazovat. Zh., No. 9, 31-36 (2000).

  11. V. D. Al’pern and G. A. Gladkovsky, Composite Materials Based on Polyurethanes [Russian translation], Khimiya, Moscow (1982).

  12. Yu. N. Rabotnov, Mechanics of a Deformable Solid [in Russian], Nauka, Moscow (1979).

    Google Scholar 

  13. G. P. Cherepanov, Fracture Mechanics of Composite Materials [in Russian], Nauka, Moscow (1983).

    Google Scholar 

  14. M. Bkkar, I. A. Prokhorova, et al., “Investigation of the mechanical properties of polypropylene woven tapes used for reinforcing composites,” Izv. Vuzov: Tekhnol. Leg. Prom-sti, No. 1, 60-64 (2019).

  15. B. M. Primachenko, I. A. Prokhorova, and M. Bkkar, “Investigation of the strength properties of polymer composite materials of various composition and structure,” Izv. Vuzov: Tekhnol. Leg. Prom-sti, No. 3, 46-49 (2019).

  16. M. Bkkar and I. A. Prokhorova, “Study of the structural parameters of polypropylene woven tapes used for reinforcing composites,” Vestn. Molod. Uchen. SPGUTD, No. 2, 15-23 (2019).

  17. GOST 29104.4-91, Industrial Fabrics. Method for Determination of Breaking Stress and Extension [in Russian], Izd-vo Standartov, Moscow (2004).

  18. GOST 32656-2014, Polymer Composites. Test Methods. Tensile Test Methods [in Russian], Standartinform, Moscow (2014).

  19. D. Roylance, Engineering Viscoelasticity, Department of Materials Science and Engineering – MIT, Cambridge MA (2001).

  20. J. Strömbro, Micro-Mechanical Mechanisms for Deformation in Polymer-Material Structures: Doctoral Thesis, KTH, Stockholm (2008).

  21. A. M. Stalevich, Deforming of Oriented Polymers [in Russian], SPGUTD, St. Petersburg (2002).

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Correspondence to I. A. Prokhorova.

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Translated from Khimicheskie Volokna, No. 3, pp. 43-47, May – June, 2020.

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Prokhorova, I.A., Bkkar, M. Prediction of Strength Properties of Elastic Polymeric Composite Materials Based on Polypropylene Woven Tapes. Fibre Chem 52, 173–178 (2020). https://doi.org/10.1007/s10692-020-10175-w

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  • DOI: https://doi.org/10.1007/s10692-020-10175-w

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