두 종류의 이소시아네이트와 디클로로-폴리에스테르 폴리올로부터 중합한 PU 난연도료의 도막물성 및 난연성

Physical Properties and Flame Retardancy of PU Coatings Polymerized with Two Different Types of Isocyanates and Dichloro-Polyester Polyol

  • 양인모 (명지대학교 공과대학 화학공학과) ;
  • 김성래 (명지대학교 공과대학 화학공학과) ;
  • 박형진 (명지대학교 공과대학 화학공학과) ;
  • 함현식 (명지대학교 공과대학 화학공학과) ;
  • 우종표 (명지대학교 공과대학 화학공학과)
  • 발행 : 2002.03.01

초록

전보에서 합성한 디클로로-폴리에스테르 폴리올(DCBAO)에 2종류의 이소시아네이트 경화제인 Desmodur N-3300과 Desmodur L-75를 선택하여 상온경화시켜 PU계 난연도료 (DCBAO/N-3300=DCBAN 및 DCBAO/L-75=DCBAL)를 각각 제조하였다. 제조된 DCBA과 DCBAL 도료로서 도막물성을 측정한 결과, 양쪽 모두의 도료가 난연처리 후에도 물성저하 현상을 초래하지 않았으며, 별도의 황변성 시험에서 황변성은 DCBAL 쪽이 다소 불량하게 나타나 Desmodur L-75가 황변성과 관련이 있음을 알았다. 또한 난연성분인 2,4-dichlorobenzoic acid의 함량 20∼30 wt%에서 LOI 값 25∼26% 선의 난연효과를 보여주었다.

The dichloro-polyester polyol (DCBAO) which was synthesized in our earlier work was cured at room temperature with two different type of curing agents including Desmodur N-3300 and Desmodur L-75 to get a polyurethane flame-retardant coatings (DCBAO/N-3300=DEBAN and DCBAO/L-75=DCBAL). We could not observe any deterioration of physical properties of the flame-retardant PU coatings (UCBAN and DCBAL) in comparison with the conventional PU coatings. Thermal resistance of DCBAL-type flame-retardant coatings, which was measured by yellowness index difference, was inferior to that of DCBAL-type PU coatings. We believe that this phenomena is attributed to the poor thermal resistance of Desmodur L-75 isocyanate. It was observed that the LOI values were 25∼26% for the PU coatings containing 20∼30 wt% of 2,4-dichlorobenzoic acid.

키워드

참고문헌

  1. European Coatings Handbook T. Brock;M. Groteklaes;P. Mischke
  2. Polyurethane Handbook(2nd Ed.) G. Oertel
  3. Organic Coatings : Science and Technology(2nd Ed.) Z.W. Wicks, Jr.;F. N. Jones;S. P. Pappas
  4. Anal. Chem. v.57 D. G. Anderson;J. T. Vanderberg https://doi.org/10.1021/ac00282a002
  5. Jpn. Patent 158,273 K. Teijin
  6. Jpn. Patent 98,158 Dainippon Ink;Chem. KK.
  7. J. Appl. Polym. Sci. v.61 H. S. Park;H. S. Hahm;E. K. Park https://doi.org/10.1002/(SICI)1097-4628(19960718)61:3<421::AID-APP4>3.0.CO;2-K
  8. J. Polym. Sci. v.34 H. S. Park;J. H. Keun;K. S. Lee https://doi.org/10.1002/(SICI)1099-0518(199606)34:8<1455::AID-POLA9>3.0.CO;2-Z
  9. J. Ind. Eng. Chem. v.3 H. S. Park;J. P. Wu;H. K. Kim
  10. J. Ind. Eng. Chem. v.3 S. J. Kim;H. S. Park;K. C. Lee;S. K. Kim;E. K. Park https://doi.org/10.1021/ie50026a005
  11. J. Appl. Polym. Sci. v.70 H. S. Park;K. J. Ha;J. H. Keun;T. O. Kim https://doi.org/10.1002/(SICI)1097-4628(19981031)70:5<913::AID-APP11>3.0.CO;2-U
  12. J. Coat. Technol. v.69 H. S. Park;J. P. Wu;C. H. Park;S. K. Kim https://doi.org/10.1007/BF02720169
  13. Prog. Org. Coatings v.11 R. Dowbenko;C. Friedlander; G. Gruber;P. Prucnal;M. Wismer https://doi.org/10.1016/0033-0655(83)80004-1
  14. Handbook of Coatings Additives v.1 L. J. Calbo
  15. J. Paint Technol. v.44 W. A. Zisman
  16. Resins for Surface Coatings v.Ⅲ P. K. T. Oldring;G. Hayward
  17. J. Coat. Technol. v.60 T. Nakamichi;M. Ishidoya
  18. Encyclopedia of Polymer Science and Engineering(2nd Ed.) v.1 H. J. Lanson;J. I. Kroschwitz(ed.)
  19. European Coatings Handbook T. Brock;M. Groteklaes;P. Mischke
  20. Chemistry & Technology of UV & EB Formulation for Coatings, Ink & Paints v.3 K. K. Dietliker
  21. Polym. Sci. Technol. v.6 S. J. Kim