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Properties of ultrahighly filled composites based on polymers and ground rubber

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Abstract

The stress-strain and strength properties of ultrahighly filled composites based on thermoplastic polymers and ground rubber wastes are studied. The content of the elastic filler is higher than 70 wt%. As is shown, introduction of minor amounts of the plastic polymer, which serves as the binder for the filler particles, makes it possible to improve the strength properties of ultrahighly filled composites and to prepare materials of a desired thickness. A correlation between the stress-strain properties of the plastic polymer-rubber systems and the effective viscosity of the matrix polymer is established. When a polymer with homogeneous deformation and good adhesion to the elastic filler is used as the matrix, the resultant composites are characterized by properties close to those of vulcanized rubbers. A new method is proposed for processing of ground rubber wastes and preparation of materials that are similar to hard rubbers.

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References

  1. V. M. Makarov and V. F. Drozdovskii, Utilization of Scrap Tires and Rubber Industry Wastes (Khimiya, Leningrad, 1986) [in Russian].

    Google Scholar 

  2. E. M. Solov’ev and O. Yu. Solov’eva, Kauch. Rezina, No. 4, 36 (1994).

  3. V. F. Drozdovskii, Kauch. Rezina, No. 5, 44 (1997).

  4. S. A. Vol’fson, Vysokomol. Soedin., Ser. C 42, 2000 (2000) [Polymer Science, Ser. C 42, 42 (2000)].

    Google Scholar 

  5. S. A. Vol’fson, Zh. Vses. Khim. O-va im. D.I. Mendeleeva 34, 530 (1985).

    Google Scholar 

  6. O. G. Polyakov, G. A. Popova, and Yu. P. Bass, Kauch. Rezina, No. 2, 32 (2003).

  7. V. V. Markov, V. P. Zakharov, Yu. S. Maloshchuk, and G. N. Zachesova, Kauch. Rezina, No. 6, 20 (1981).

  8. M. E. Solov’ev, N. D. Zakharov, V. N. Ovchinnikova, and T. G. Goncharenko, Kauch. Rezina, No. 6, 11 (1982).

  9. V. M. Makarov, N. D. Zakharov, G. N. Gracheva, and V. I. Makarchuk, Kauch. Rezina, No. 6, 39 (1973).

  10. A. A. Kirillov, N. D. Zakharov, Yu. N. Neienkirkhen, and V. I. Safronov, Kauch. Rezina, No. 6, 16 (1979).

  11. O. A. Serenko, S. L. Bazhenov, A. N. Kryuchkov, et al., Khim. Prom-st. (Moscow), No. 7, 34 (2003).

  12. E. Kowalska, M. Zubrowska, and M. Borensztejn, Polimery 48, 633 (2003).

    CAS  Google Scholar 

  13. P. Rajalingman, J. Sharpe, and W. Baker, Rubber Chem. Technol. 66, 664 (1993).

    Google Scholar 

  14. V. M. Bel’kov, Khim. Prom-st. (Moscow), No. 11, 8 (2000).

  15. G. M. Trofimova, D. D. Novikov, L. V. Kompaniets, et al., Vysokomol. Soedin., Ser. A 42, 1238 (2000) [Polymer Science, Ser. A 42, 825 (2000)].

    CAS  Google Scholar 

  16. G. M. Trofimova, D. D. Novikov, L. V. Kompaniets, et al., Vysokomol. Soedin., Ser. A 45, 912 (2003) [Polymer Science, Ser. A 45, 537 (2003)].

    CAS  Google Scholar 

  17. O. A. Serenko, G. P. Goncharuk, I. N. Nasrullaev, et al., Vysokomol. Soedin., Ser. A 45, 1900 (2003) [Polymer Science, Ser. A 45, 1153 (2003)].

    CAS  Google Scholar 

  18. O. A. Serenko, Doctoral Dissertation in Chemistry (ISPM RAN, Moscow, 2004).

    Google Scholar 

  19. G. P. Goncharuk, S. L. Bazhenov, E. S. Obolonkova, and O. A. Serenko, Vysokomol. Soedin., Ser. A 45, 970 (2003) [Polymer Science, Ser. A 45, 584 (2003)].

    CAS  Google Scholar 

  20. S. L. Bazhenov, G. P. Goncharuk, M. I. Knunyants, et al., Vysokomol. Soedin., Ser. A 44, 637 (2002) [Polymer Science, Ser. A 44, 393 (2002)].

    CAS  Google Scholar 

  21. O. A. Serenko, V. S. Avinkin, M. Yu. Vdovin, and A. N. Kryuchkov, Vysokomol. Soedin., Ser. A 43, 246 (2001) [Polymer Science, Ser. A 43, 129 (2001)].

    CAS  Google Scholar 

  22. O. A. Serenko, S. L. Bazhenov, I. N. Nasrullaev, and Al. Al. Berlin, Vysokomol. Soedin., Ser. A 47, 64 (2005) [Polymer Science, Ser. A 47, 49 (2005)].

    CAS  Google Scholar 

  23. G. Orange, in Fracture of Polymers, Composites and Adhesives (ESIS, 2000), No. 27, p. 247.

  24. H. Beerbaum and W. Grellmann, in Fracture of Polymers, Composites and Adhesives (ESIS, 2000), No. 27, p. 163.

  25. Applications of Polyolefins, Polystyrenes, Fluoroplastics, and Poly(vinyl acetate) Plastics: A Catalog (ONPO Plastpolimer, Leningrad, 1990) [in Russian].

  26. S. L. Bazhenov, T. E. Grokhovskaya, D. G. Nosova, et al., Vysokomol. Soedin., Ser. A 44, 1999 (2002) [Polymer Science, Ser. A 44, 1196 (2002)].

    CAS  Google Scholar 

  27. F. S. D’yachkovskii and L. A. Novokshonova, Usp. Khim. 53, 200 (1984).

    CAS  Google Scholar 

  28. R. Haward, Macromolecules 26, 860 (1993).

    Article  Google Scholar 

  29. L. Nicolais and M. Narkis, Polym. Eng. Sci. 11, 194 (1971).

    Article  CAS  Google Scholar 

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Original Russian Text © O.A. Serenko, G.P. Goncharuk, I.B. Meshkov, E.S. Obolonkova, S.L. Bazhenov, A.M. Muzafarov, 2006, published in Vysokomolekulyarnye Soedineniya, Ser. A, 2006, Vol. 48, No. 1, pp. 80–89.

This work was supported by the Russian Foundation for Basic Research, project no. 03-03-32259.

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Serenko, O.A., Goncharuk, G.P., Meshkov, I.B. et al. Properties of ultrahighly filled composites based on polymers and ground rubber. Polym. Sci. Ser. A 48, 64–71 (2006). https://doi.org/10.1134/S0965545X0601010X

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  • DOI: https://doi.org/10.1134/S0965545X0601010X

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