A Consideration on Thermal Stability of the PVAc Latex Adhesive

PVAc 라텍스 접착제의 열적 안정성에 대한 고찰

  • 권재범 (부경대학교 안전공학과) ;
  • 이내우 (부경대학교 안전공학과) ;
  • 설수덕 (동아대학교 재료금속·화학공학부)
  • Published : 2003.09.01

Abstract

Latex polymers are widely used for adhesive, binder, paint etc. Especially the PVAc(Polyvinyl acetate) latex which manufactured by vinyl acetate and vinyl alcohol as protective colloid is a useful environmentally friendly adhesive. To increase useful property of PVAc latex, this study was carried out for checking thermal characteristics and physical condition of PVAc latex by DSC, FT-IR, Pyrolyzer GC-MS. The activation energies of thermal decomposition for 40, 48, 56, 64% solid content of PVAc latex were found as 28.1-36.0kcal/mol by Kissinger's method and 17.2-22.0kcal/mol by DSC method. Actually, reasonable solid content could be consiered as 56% because of activation energy and adhesive characteristics. According to the effect of protective colloid for 4, 10, 15, 20wt%, the activation energy shows same tendency to both method and in case of l5wt% has been found as the highest activation energy. The mechanism of thermal decomposition was mainly estimated by main chain scission, not by side group on FT-IR analysis. Main component of Pyrolzer GC-MS result were consisted of $CH_3COOH$, $CH_3$, $H_2O$ and light gases(CO, $CO_2$, $CH_4$ etc).

Keywords

References

  1. W. L. Hawfeins, Polymer Stabilization, John Wiley & Sons, 1972
  2. H. H. G. Jellinek, Aspects of Degradation and Stabilization of Polymer, Elservier, 1978
  3. W. Schnabel, Polymer Degradation, Hanser, 1981
  4. N. Grassier, G. Scott, Polymer Degradation and Stabilization, Cambridge University Press, 1985
  5. G. Odian, Principles of Polyme-erization 2th hed., Wiley Interscience, New York, 1981
  6. K.I.E.T., Tech. Adhesive, Sep., 1983
  7. 설수덕, 이선룡, 강돈오, 이내우, '유화중합에의 한 Methyl methacrylate/Styrene Core Shell 라텍스 입자 제조에 관한 연구' 한국고무학회지, 제37권, 제1호, pp 21-30, 2002
  8. J. H. Kim, M. Chainey, M. S. El-Aasser and J. W. Vanderhoff, 'Emulsifier-free emulsion Copolymerization of styrene and sodium styrene sulfonate', J. Polym. Sci. PartA : Polymer Chemistry, vol. 30, pp.171-183, 1992 https://doi.org/10.1002/pola.1992.080300201
  9. S. Y. Lee, Y. J. Shin, 'Estim-mation of Thermodynamic properties on the pyrolysis of Dialkyl peroxides in the helium gas.' Hwahak-Konghak, vol. 34, No. 5, pp. 592-596, 1996
  10. D.Kim, Emulsion Technologies and Surface Active Agents, pp. 104, KAIST Daejun, 1993
  11. T. Ando, and Y. Fujimoto, S. Morisaki, 'An alysisof differential scanning calorimetric data for reactive chemicals', J. of Hazardous Material, vol. 28, pp. 251-280, 1991 https://doi.org/10.1016/0304-3894(91)87079-H
  12. H. S. Chang, S. A. Chen, 'Kinetics and Mechanism of Emulsifier-Free Emulsion Polymerization. II.Styrene/Water Soluble Comoner (Sodium Methallyl Sulfonate) System', J. Polym. Sci. PartA : Polymer Chemistry, vol. 26, No. 7, pp. 1207-1229, 1988 https://doi.org/10.1002/pola.1988.080260421
  13. P. A. Weerts, J. L. M. van der Loos, and A. L. German, 'Emulsion polymerization of butadiene' Makromol. Chem., vol. 192, pp. 2009-2019, 1991 https://doi.org/10.1002/macp.1991.021920910
  14. Barry J. Holland, James N. Hay, 'The thermal degradation of poly(viny1 acete) measured by thermal analysis-Fourier transform infrared Spectroscopy', Polym. vol. 43, pp. 2207-2211, 2002 https://doi.org/10.1016/S0032-3861(02)00038-1
  15. 이내우, 김남석, 설수덕 'A study on the kinetics and n-Butyl Methacrylate', 부경대학교 논문집, 제17권, 제1호, pp. 275-281, 2002
  16. 주영배, 이내우, 최재욱, 강돈오, 설수덕, '메틸메타크릴레이트의 환경친화적인 광중합 및 열분해 특성', 산업안전학회지, 제16권, 제3호, pp.68-75, 2001
  17. 이내우, 최재욱, 설수덕, '부틸메타크릴레이트의 환경친화적인 광중합 및 열분해 특성', 산업안전학회지, 제17권, 제2호, pp. 45-51, 2002
  18. H. E. Kissinger, 'Reaction kinetics in Differential Thermal Analysis', Anal. Chem., Vol. 29, No. 11, pp. 1702-1706, 1957 https://doi.org/10.1021/ac60131a045
  19. H. H. G. Jellinek, 'Aspect of Degradation and Stabilization of polymer', Elsevier, 1978