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Monte carlo approach to estimating the photodegradation of polymer coatings

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Abstract

The degradation of a polymer coating and predicting the coating lifetime based on physical properties and distribution within the coating of the polymer binder, pigments, and fillers are economically very important. As technologies advance and allow for control of coatings at the nanoscale level, methods such as Monte Carlo can be used not only to predict the behavior of a nanodesigned coating with time but also to design coatings, such as optimizing pigment particle distributions or optimum hard and soft phase distributions of the binders in multiphase systems for maintaining the desired property with time. Erosion of the coating surface was simulated using Monte Carlo techniques where terrestrial solar flux is the initiator for polymer segment cleavage and removal. The impact on the sensitivity of the polymer adjacent to the detached polymer segment can be increased or decreased in the model based on the chemistry and surface energy of the remaining polymer matrix. Multiple phases with varying sensitivity to degradation can be modeled. The Monte Carlo generates a statistically similar surface topography and chemistry of the coating. The results of the Monte Carlo model are compared to measurable properties such as gloss, fracture toughness, and wetting contact angle, using various published correlations of the property to the surface topology. The simulated properties change through the life-time of the coating in ways that are consistent with observed behavior. Apparently, complicated changes in many properties can be described by the repeated application of simple, random processes.

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References

  1. Landau, D.P. and Binder, K.,Monte Carlo Simulations on Statistical Physics, Cambridge University Press, 2000.

  2. McElroy, W.N., Pahl, R.R., Serpan, C.Z. Jr., “Damage Function and Data Correlation,”Nucl. Appl. Tech., 7 (6), 561–571 (1969).

    CAS  Google Scholar 

  3. Martin, J.W., “Quantitative Characterization of Spectral Ultraviolet Radiation-Induced Photodegradation in Coating Systems Exposed in the Laboratory and the Field,”Prog. Org. Coat., 23, 49–70 (1993).

    Article  CAS  Google Scholar 

  4. Croll, S.G. and Skaja, A.D., “Spectroscopic Adsorption and Effective Dosage on Accelerated Weathering of a Polyester-Urethane Coating,”J. Mater. Sci., 37, 4889–4900 (2002).

    Article  CAS  Google Scholar 

  5. Zhang, R., Chen, H., Cao, H., Huang, C.M., Mallon, P.E., Li, Y., He, Y., Sandreczki, T.C., Jean, Y.C., Suzuki, R., and Ohdaira, T., “Degradation of Polymer Coating Systems Studied by Positron Annihilation Spectroscopy. {IV}. Oxygen Effect of {UV} Irradiation,”J. Polym. Sci., Part B: Polym. Phys., 39, 2035–2047 (2001).

    Article  CAS  Google Scholar 

  6. Gu, X., Raghavan, D., Nguyen, T., VanLandingham, M.R., and Yebassa, D., “Characterization of Polyester Degradation Using Tapping Mode Atomic Force Microscopy: Exposure to Alkaline Solution at Room Temperature,”J. Polym. Degrad. Stab., 74, 139–149 (2001).

    Article  CAS  Google Scholar 

  7. Bennett, J.M. and Mattson, L.,Surface Roughness and Scattering, Optical Society of America, Washington, D.C., 1989.

    Google Scholar 

  8. Bennett, H.E. and Porteus, J.O., “Relation Between Surface Roughness and Specular Reflectance at Normal Incidence,”J. Optical Society of America, 51, 123–129 (1961).

    Article  CAS  Google Scholar 

  9. Fecchine, G.J.M., Rabello, M.S., and Souto-Maior, R.M., “The Effect of Uultraviolet Stabilizers on the Photodegradation of Pol(ethylene terephthalate),”J. Polym. Degrad. Stab., 75, 153–159 (2002).

    Article  Google Scholar 

  10. Vu, C., LaFerte, O., and Eranian, A., “Use of Colloidal Silica Acrylates in UV Coatings,” (Clariant France).

  11. Sampers, J., “Importance of Weathering Factors Other than UV Radiation and Temperature in Outdoor Exposures,”J. Polym. Degrad. Stab., 76, 455–465 (2002).

    Article  CAS  Google Scholar 

  12. Signor, A.W., VanLandingham, M.R., and Chin, J.W., “Effects of Ultraviolet Radiation Exposure on Vinyl Ester Resins: Characterization of Chemical, Physical and Mechanical Damage,”J. Polym. Degrad. Stab., 79, 359–368 (2003).

    Article  CAS  Google Scholar 

  13. Andrady, A.L., Hamid, S.H., Hu, X., and Torikia, A., “Effects of Increased Solar Ultraviolet Radiation on Materials,”J. Photochem. Photobiol. B: Biology, 46, 96–103 (1998).

    Article  CAS  Google Scholar 

  14. Nichols, M.E. and Peters, C.A., “The Effect of Weathering on the Fracture Energy of Hardcoats Over Polycarbonate,”J. Polym. Degrad. Stab., 75, 439–446 (2002).

    Article  CAS  Google Scholar 

  15. Gerlock, J.L., Kucherov, A.V., and Nichols, M.E., “On the Combined Used of UVA, HALS, Photooxidation, And Fracture Energy Measurements to Anticipate The Long-Term Weathering Performance of Clercoat/Basecoat Automotive Paint Systems,”Journal of Coatings Technology, 73, No. 918, 45 (2001).

    CAS  Google Scholar 

  16. Kelly, C.T., Tong, L., and White, J.R., “Slow Strain-Rate Testing of Polymers with Ultraviolet Exposure,”J. Mater. Sci., 32, 851–861 (1997).

    Article  CAS  Google Scholar 

  17. Gillen, K.T. and Celina, M., “The Wear-Out Approach for Predicting the Remaining Lifetime of Materials,”J. Polym. Degrad. Stab., 71, 15–30 (2001).

    Article  CAS  Google Scholar 

  18. Osterhold, M. and Glockner, P., “Influence of Weathering on Physical Properties of Clearcoats,”Prog. Org. Coat., 41, 177–182 (2001).

    Article  CAS  Google Scholar 

  19. Grossman, D.M., “Errors Caused by Using Joules to Time Laboratory and Outdoor Exposure Tests”Accelerated and Outdoor Testing of Organic Materials, ASTM STP 1202, ASTM, Philadelphia, 1993.

    Google Scholar 

  20. Q-Panel LU-8031, “High Irradiance UV/Condensation Testers Allow Faster Accelerated Weathering Test Results.”

  21. Fischer, R.M., “The Use of Nonparametric Statistics in Accelerated Weathering Test Design and Development,”SPE Polymer Modifiers and Additives Div. Newsletter, Vol. 19, No. 2, 9–15 (1993).

    Google Scholar 

  22. Sullivan, C.J. and Cooper, C.F., “Polyester Weatherability: Coupling Frontier Molecular Orbital Calculations of Oxidative Stability with Accelerated Testing,”Journal of Coatings Technology, 67, No. 847, 53 (1995).

    CAS  Google Scholar 

  23. Hazlett, R.D., “On Surface Roughness Effects on Wetting Phenomena,”Contact Angle, Wettability and Adhesion 173–181 (1993).

  24. Vang, C., Li, J.P., Croll, S.G., Richter, A., Dewald, M., Bierwagen, G.P., and Tallman, D.E., “Chemical Degradation of a High Gloss Polyurethane Protective Aircraft Coating Exposed to Two Accelerated Weathering Exposures: II. An FTIR Spectroscopy Approach,”J. Polym. Degrad. Stab. (in review).

  25. Ranby, B. and Rabek, J.F.,Photodegradation, Photoxidation and Photostabilization of Polymers, John Wiley and Sons, 1975.

  26. Green, M.A.,Solar Cells, Operating Principles, Technology, and System Applications, Prentice-Hall, 1982.

  27. Li, J., “Study on Corrosion Protection of Organic Coating,” Ph.D. Thesis, NDSU, Fargo, ND, 2001.

    Google Scholar 

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Hinderliter, B., Croll, S. Monte carlo approach to estimating the photodegradation of polymer coatings. J Coat Technol Res 2, 483–491 (2005). https://doi.org/10.1007/BF02733891

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