350 rub
Journal Science Intensive Technologies №7 for 2011 г.
Article in number:
New fire-resistant polymeric kompozicionnye material on base of the polyethylene of the low pressure
Authors:
S.S. Pekar, S.U. Khashirova, A.K. Mikitaev
Abstract:
The use of polymeric composite materials in demanding conditions makes the problem of giving them a high resistance to fire. At the present stage of development of polymer chemistry, this problem has comprehensive search system highly efficient and environmentally friendly systems that reduce the flammability of polymer materials - flame retardants. As a result, the modern search for new systems that reduce the flammability of plastics, aims to develop environmentally friendly flame retardants. One possible way to create organic materials with low flammability is the use of borate and phosphate complexes of guanidine with methacrylic acid. In this paper we investigate the possibility of improving resistance to burning, physical and mechanical properties of high-density polyethylene (PE) by mixing in the melt with the organoclay, which is a Ca-and Na-form of montmorillonite modified with borate complexes of guanidine with methacrylic acid (complex 1) and guanidine phosphate with methacrylic acid (complex 2). Boron compounds are good catalysts for the dehydration reaction at temperatures below 300 - 350° C, while above this temperature catalyze the polymerization reaction. All these properties of boric anhydride contributed to a significant reduction of flammability of materials and reduce soot formation. In addition, water vapor displace oxygen from the combustion zone. Phosphorus flame retardants are virtually the only substances capable of preventing decay after the cessation of burning materials to reduce the possibility of secondary fires them, as the carbonized layer containing phosphorus, highly resistant to prolonged heating. Thus, the possibility of applying the set of modified montmorillonite complexes of borate and phosphate guanidine with methacrylic acid as an effective filler in polyolefins, reduce flammabi.
Pages: 74-76
References
  1. Clarey M., Edwards J., Tzipursky S.J., Beall G.W., Eisenhour D.D. Pat. 6050509 USA. 2001.
  2. Yano K, Usuki A, Okada A. // J Polym Sci Part A: Polym Chem 1997;35:2289.
  3. Джангуразов Б.Ж., Козлов Г.В., Микитаев А.К. Теплостойкость нанокомпозитов полимер/органоглина // Современные наукоёмкие технологии. 2009. № 11. С. 31-34.
  4. Микитаев А.К., Каладжян А.А., Леднев О.Б., Микитаев М.А. Нанокомпозитные полимерные материалы на основе органоглин // Пластические массы. 2004. № 12. C. 45-50.
  5. Асеева Р.М., Заиков Г.Е. Горение полимерных материалов. М.: Наука. 1981. 280 с.
  6. Сирота А.Г.Модификация структуры и свойств полиолефинов. 3-е изд. перераб. Л.: Химия. 1984. 152 с.