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BIBLIOGRAFIA

1) L. Tange, D. Drohamann, “Waste management of plastics containing flame retardants”, Flame retardants conference, London, 5-6 Februry 2002.

2) A.Beard, “Flame retardants”, The European Flame Retardants Association, http://

www.cefic-efra.com (anno 2005)

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5) An introduction to Brominated Flame Retardant, Bromine Science and Enviromental Forum, http:// www.bsef.com (anno 2005)

6) Arthur G. Mack, “Flame retardants, Halogenated”, in Kirk-Othmer Encyclopedia of Chemical Technology, 2004, Wiley&Sons.

7) E.D.Weil, “Flame retardants, Phosphorus”, in Kirk-Othmer Encyclopedia of Chemical Technology, 2001, Wiley&Sons.

8) Burton J. Sutker, “Flame retardants”, in Ullmann’s Encyclopedia of Industrial Chemistry, Sixth Edition, 2002, Wiley-VCH.

9) M. Minelli, "Studio dei prodotti di decomposizione di resine epossidiche bromurate", Tesi di Laurea in Ingegneria Chimica, Università degli studi di Pisa, 1998-99.

10) S.G. Shankawaikar, C. Cruz, “Thermal degradation and weight loss characteristics of commercial phosphate esters”, Ind. Eng. Chem. Res., 33, 740-743 (1994)

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ii 11) S.G. Shankawaikar, D. G. Placek, “Oxidation and weight loss characteristics of

commercial phosphate”, Ind. Eng. Chem. Res., 31, 1810-1813 (1992)

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13) M. Spirckel, N. Regnier, B. Mortaigne, B. Youssef, C. Bunel, “Thermal degradation and fire performance of new phosphonate polyurethanes”, Polymer Degradation an Stability, 78, 211-218 (2002)

14) R. Wolf, “Flame retardant viscose rayon containing a pyrophosphate”, Ind. Eng.

Chem. Prod. Res. Dev., 20, 413-420 (1981).

15) K. Lee, K. Yoon, J. Kim, J. Bae, J. Yang, S. Hong, “Effect of novolac phenol and ologomeric phosphate mixtures on flame retardance enhancement of ABS”, Polymer Degradation and Stability, 81, 173-179, (2003).

16) K.Lee, J. Kim, J. Yang, S. Hong, H. Kim,”Studies on the thermal stabilization enhancement of ABS; synergistic effect by triphenl phosphate and apoxy resin mixtures”, Polymer, 43, 2249-2253, (2002).

17) G. Mascolo, R. Rausa, G. Mininni, L. Tinucci, “ The gas phase decomposition of synthetic lubrificants under pyrolitic condition”, J. Ana. Appl. Pyrolysis, 71, 165-178 (2004).

18) B. N. Jang, C. A. Wilkie, “the effects of triphenilphosphate and resircinolbis(diphenilphosphate) on the thermal degradation of polycarbonate in air”, Thermochimica Acta, 433, 1-12 (2005).

19) E.A. Murashko et al., “Fire-retardant action of resorcinol bis(diphenyl phosphate) in PC-ABS blen. II, Reactions in the condensed phase, J. of Applied Polymer Science, 71, 1863-1872, (1999).

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iii 20) A.I. Balabanovich, “Poly(butylene terephatale) fire retarded by bisphenol A

bis(diphenyl phosphate), J. Anal., Appl. Pyrolysis, 72, 229-233, (2004),.

21) D. Santillo, P.Johnston, “Playng with fire: the global threat presented by brominated flame retardant justifies urgent substitution”, Enviroment International, 29, 725-734 (2003)

22) F. Barontini., K. Marsanich, L. Petarca, V. Cozzani, “Thermal degradaion and decomposition products of electronic board BFR”, Ind.Eng.Chem.Res, 44, 4186-4199 (2005).

23) Pecori L., “Aspetti di sicurezza legati alla formazione ed al rilascio di composti bromurati in incidenti”, Tesi di Laurea in Ingegneria Chimica, Università degli Studi di Pisa, 1999-2000.

24) M.W. Hornung, E.W. Zabel, R.E. Peterson, “Toxic equivalency factors of polibrominated dibenzo-p-dioxin, dibenzofuran, biphenyl, and polyhalogenated diphenil ether cogeners based on rainbow trout early life stage mortality”, Toxicology and applied pharmacology, 140, 227-234 (1996).

25) M.P. Luda, A.I. Balabanovich, G. Camino, “Thermal degrdadation of fire retardant brominated epoxy resins”, J. Anal. App. Pyrolysis, 65, 25-40 (2002).

26) M. Blazso, Zs. Czegeny, Cs. Csoma, “Pyrolysis and debromination of flame retarded polymers of electronic scrap studied by ananlytical pyrolysis” J. Anal. App. Pyrolysis, 64, 249-261 (2002)

27) A.I. Balabanovich, A. Hornung, D. Merz, H. Seifert, “The effect of a curing agent on the thermal degradation of fire retardant brominated epoxy resins”, Polymer Degradation and Stability, 85, 713-723 (2004).

28) A. Leisewitz, H. Kruse, E. Schramm, “Substituting enviromentally relevant flame retardants. Assessment fundamentals”, in Reserch report by Federal Enviromental Agency, Berlin (2001)

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iv 29) World Health Organization, “Flame retardant: Tris(chloropropyl)phosphate and

Tris(2-chloroethyl)phosphate”, in Enviromental Healt Criteria 209, Geneva, (1998).

30) F. Barontini., K. Marsanich, V. Cozzani, “The use of TG-FTIR technique for the assessment of yidrogen bromide emission in the combustion of flame retardant”, J.

Therm. Anal. Cal.,78, 599-619 (2004).

31) K. Marsanich, “Analisi dei rischi dovuti alla formazione non voluta di sostanze pericolose a seguito di perdita di controllo di processi chimici industriali”, Tesi di dottorato di ricerca, Università degli studi di Pisa, 2003-2004.

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