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Inhibited Oxidation of Cumene and Polymerization of Styrene Investigated by Solution Microcalorimetry

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Abstract

The application of solution microcalorimetry was demonstrated on two model examples – inhibited oxidation of cumene and radical polymerization of styrene.

From the experimental dependences of the rate of heat release on time, the rate constants k 7 of the interaction of an inhibitor with radicals of substrate (RO .2 or R.) in oxidation or in polymerization were determined for the set of inhibitors of N-aryl N-(2-quinone) amine series. It was shown that these compounds are weak inhibitors of oxidation of cumene and rather efficient inhibitor of polymerization of styrene.

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References

  1. N. C Billingham, D. C. Bott and A. S. Manke, Developments in Polymer Degradation-3, Ed. N. Grassie, Applied Science Publ., London 1981, p. 63.

    Google Scholar 

  2. S. H. Goh, Thermochim. Acta, 80 (1984) 75.

    Google Scholar 

  3. T. Schwarz, G. Steiner and J. Koppelmann, J. Thermal Anal., 35 (1989) 481.

    Google Scholar 

  4. M. Paczuski and E. Kadzierska, J. Thermal Anal., 36 (1990) 2239.

    Google Scholar 

  5. O. Gal, L. Novakovič, V. Markovič and V. T. Stannett, Radiat, Phys. Chem., 22 (1983) 627.

    Google Scholar 

  6. G. Geuskens, M. N. Kanda and G. Nedelkos, Bull. Soc. Chim. Belg., 99 (1990) 1085.

    Google Scholar 

  7. V. Ya Shlyapintokh, O. N. Karpukhin, L. M. Postnikov, I. V. Zakharov, A. A. Vichutinski and V. F. Tsepalov, Chemiluninescence Method of the Study of Slow Chemical Processes (in Russian), Nauka, Moscow 1966, p. 91.

    Google Scholar 

  8. L. Reich and S. S. Stivala, Autooxidatin of Hydrocarbons and Polyolefins, Marcel Dekker Inc., New York 1969, p. 352

    Google Scholar 

  9. L. Matisová-Rychlá, O. N. Karpukhin and T. O. Pokhalok, Photochem. Photobiol., 4 (1973) 303.

    Google Scholar 

  10. G. D. Mendenhall, Angew. Chem. Int. Ed. Engl., 16 (1977) 225.

    Google Scholar 

  11. G. A. George, G. T. Egglestone and S. Z. Riddell, Polym. Engn. Sci., 23 (1983) 412.

    Google Scholar 

  12. J. Cen, F. Konoma and Z. Osawa, Polym. Photochem., 7 (1986) 469.

    Google Scholar 

  13. D. Forstrom, A. Kron, B. Mattson, T. Reitberger, B. Stenberg and B. Terselius, Rubber Chem. Technol., 65 (1992) 736.

    Google Scholar 

  14. T. Setnescu, S. Jipa, R. Setnescu and I. Mihalcea, Polym. Deg. Stab., 5 (1996) 19.

    Google Scholar 

  15. S. Jipa, M. Nishimoto, H. Otsuki and Z. Osawa, Polym. Deg. Stab., 54 (1996) 99.

    Google Scholar 

  16. V. Dudler, D. J. Lacey and Ch. Kronke, Polym. Deg. Stab., 51 (1996) 115.

    Google Scholar 

  17. E. L. Shanina, V. A. Belyakov and G. E. Zaikov, Polym. Deg. Stab., 27 (1990) 309.

    Google Scholar 

  18. J. Rotschová and J. Pospíšil, Angew. Markomol. Chem., 194 (1992) 201.

    Google Scholar 

  19. A. P. Mariin, Ya. A. Shlyapnikov, A. Zh. Mahkamov and A. T. Dzhalilov, Polym. Deg. Stab., 36 (1992) 1, ibid 35 (1992) 141, ibid 35 (1992) 229.

    Google Scholar 

  20. P. Gijsman, K. Janssen and D. Tummers, Proceedings of 17th International Conference on Advances in the Stabilization and Degradation of Polymers, Luzern, Switzerland, June 1995, p. 99.

  21. L. Jiráčková-Audouin, J. F. Borg, J. F. Farreng, J. Verdu and J. Pospíšil, Polym. Deg. Stab., 6 (1984) 17.

    Google Scholar 

  22. F. Gugumus, Polym. Deg. Stab., 46 (1994) 123.

    Google Scholar 

  23. S. Al-Malaika, A. Marogi and G. Scott, Polym. Deg. Stab., 18 (1987) 89.

    Google Scholar 

  24. A. A. Velikov, V. I. Karpitskii and N. V. Sizova, Kinetika i Kataliz (in Russian), 29 (1988) 321.

    Google Scholar 

  25. L. Matisová-Rychlá, A. A. Velikov, J. Rychly and M. Schulz, Polym. Deg. Stab., 37 (1992) 77.

    Google Scholar 

  26. E. T. Denisov, Handbook of Antioxidants, Bond Dissociation Energies, Rate Constants, Activation Energies and Enthalpies of Reactions, CRC Press, Boca Raton, Florida 1996, p. 87.

    Google Scholar 

  27. S. Bagdassaryan, Theory of Radical Polymerization (in Russian), Nauka, Moscow 1959, p. 232.

    Google Scholar 

  28. A. A. Velikov and V. I. Karpitskii, Kinetika i Kataliz (in Russian), 31 (1990) 466.

    Google Scholar 

  29. G. A. George, In: Developments in Polymer Degradation-3, Ed. N. Grassie, Applied Sci. Publ., London 1981, p. 173.

    Google Scholar 

  30. M. D. Goldfein and G. P. Gladyshev, Uspechi Khimii (in Russian), 57 (1988) 1888.

    Google Scholar 

  31. Polymer Handbook The Second Edition, J. Brandrup, E. H. Immergut, Wiley, New York.

  32. V. F. Tsepalov, A. A. Kharitonova, G. P. Gladyshev and N. M. Emmanuel, Kinetika i Kataliz (in Russian), 18 (1997) 1261.

    Google Scholar 

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Velikov, A., Matisová-Rychlá, L., Broska, R. et al. Inhibited Oxidation of Cumene and Polymerization of Styrene Investigated by Solution Microcalorimetry. Journal of Thermal Analysis and Calorimetry 57, 473–486 (1999). https://doi.org/10.1023/A:1010116024873

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