Skip to main content
Log in

Mathematical Models and Methods for Determining Deformation-Performance Properties of Technical Polymer Textile Materials

  • INNOVATIVE DIRECTIONS OF DEVELOPMENT OF POLYMER FIBER AND COMPOSITE MATERIALS SCIENCE
  • Published:
Fibre Chemistry Aims and scope

The textile industry, which is concerned with manufacture of various household and technical materials and goods, faces in increasing frequency the problems of integrated development of the industry based on modern methods of investigation of the properties of the materials using advanced information technologies. Acceleration of scientific and technological progress and enhancement of competitiveness of textile industry products stimulates development of new promising innovative technologies of scientific research in the sphere of study and prediction of deformation-performance properties of the noted materials

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.

Institutional subscriptions

Fig. 1.

Similar content being viewed by others

References

  1. A. G. Makarov, Izv. Vuz. Tekhnol. Tekst. Prom., No. 2, 12-16 (2000).

  2. A. G. Makarov, Izv. Vuz. Tekhnol. Tekst. Prom., No. 2, 13-17 (2002).

  3. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 5, 44-47 (2013).

  4. V. V. Golovina, P. P. Rymkevich, et al., Khim. Volokna, No. 6, 33-40 (2013).

  5. P. P. Rymkevich, A. A. Romanova, et al., J. Macromol. Sci., Part B: Physics, 52, No. 12, 1829-1847 (2013).

    Article  CAS  Google Scholar 

  6. A. G. Makarov, G. Y. Slutsker, and N. V. Drobotun, Techn. Phys., 6, No. 2, 240-245 (2015).

    Article  Google Scholar 

  7. A. G. Makarov, G. Y. Slutsker, et al., Fiz. Tv. Tela, 58, No. 4, 814-820 (2015).

    Google Scholar 

  8. A. G. Makarov, A. V. Demidov, et al., Khim. Volokna, No. 6, 60-67 (2015).

  9. A. G. Makarov, N. V. Pereborova, et al., Ibid., 68-72.

  10. A. G. Makarov, N. V. Pereborova, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 5 (359), 48-58 (2015).

  11. A. G. Makarov, A. V. Demidov, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 6 (360), 194-205 (2015).

  12. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 1, 37-42 (2016).

  13. A. G. Makarov, A. V. Demidov, et al., Khim. Volokna, No. 2, 52-58 (2016).

  14. A. V. Demidov, A. G. Makarov, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 1 (367), 250-258 (2017).

  15. A. G. Makarov, N. V. Pereborova, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 2 (368), 309-313 (2017).

  16. A. G. Makarov, N. V. Pereborova, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 4 (370), 287-292 (2017).

  17. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 1, 69-73 (2017).

  18. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 2, 59-63 (2017).

  19. A. V. Demidov, A. G. Makarov, et al., Khim. Volokna, No. 4, 46-51 (2017).

  20. N. V. Pereborova, A. V. Demidov, et al., Khim. Volokna, No. 2, 36-39 (2018).

  21. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 3, 94-97 (2018).

  22. N. V. Pereborova, A. G. Makarov, et al., Khim. Volokna, No. 4, 54-56 (2018).

  23. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 4, 117-120 (2018).

  24. N. V. Pereborova, A. G. Makarov, et al., Khim. Volokna, No. 5, 89-92 (2019).

  25. N. V. Pereborova, A. G. Makarov, et al., Khim. Volokna, No. 6, 3-6 (2018).

  26. N. V. Pereborova, A. G. Makarov, et al., Khim. Volokna, No. 6, 87-90 (2018).

  27. N. V. Pereborova, A. V. Demidov, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 2 (374), 251-255 (2018).

  28. N. V. Pereborova, A. G. Makarov, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 3 (375), 253-257 (2018).

  29. A. G. Makarov, N. V. Pereborova, et al., Khim. Volokna, No. 3, 3-7 (2020).

  30. N. V. Pereborova, A. G. Makarov, et al., Khim. Volokna, No. 5, 68-70, 71-73 (2019).

  31. N. V. Pereborova, A. V. Demidov, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 2 (380), 192-198 (2019).

  32. N. V. Pereborova, A. V. Demidov, et al., Izv. Vuz. Tekhnol. Tekst. Prom., No. 3 (381), 242-247 (2019).

Download references

The research was financed within the ambit of accomplishment of state assignment of the Ministry of Science and Higher Education of the Russian Federation. State assignment, Project No. FSEZ-2020-0005.

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to A. G. Makarov.

Additional information

Translated from Khimicheskie Volokna, No. 4, pp. 3-7, July-August, 2020

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Makarov, A.G., Pereborova, N.V., Kozlov, A.A. et al. Mathematical Models and Methods for Determining Deformation-Performance Properties of Technical Polymer Textile Materials. Fibre Chem 52, 233–238 (2020). https://doi.org/10.1007/s10692-021-10187-0

Download citation

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10692-021-10187-0

Navigation