Assessment of the Mechanism of Adhesive Destruction Coatings

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Abstract:

Information on deformation of coatings at different loading levels during peeling is given. It is shown that the deformations of the organosilicon coating appear already at the initial stages of loading, and the obtained data correlate with the data on acoustic emission. For a polyvinyl acetate coating at low loading levels, equal to 0.3-0.4 R, the release of acoustic signal energy is not observed. The absence of signals with a large amplitude at loading levels up to 0.7-0.8 R indicates the development of plastic deformations in the contact zone of the coating with the substrate. It was found that early localization of bond breaking in the contact zone, leading to the formation of a fracture focus, occurs in organosilicon coatings KO-168. For PVAC coatings, an abrupt growth of cracks is characteristic, which is preceded by its slow growth. The pseudoplastic mechanism of destruction of PVAC coatings has been established. The influence of the nature of the substrate on the change in the nature of the peeling of the coatings is considered.

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841-846

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August 2021

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[1] L.P. Orentlicher, V.I. Loganina, Protective Decorative Coatings for Concrete and Stone Buildings, Study guide, Stroyizdat, Moscow, (1992).

Google Scholar

[2] M.I. Karyakina, Physico-chemical basis of the formation and aging of coatings, Chemistry, Moscow, (1980).

Google Scholar

[3] V.I. Loganina, Increasing the Durability of Paint and Varnish Coatings in Building Products and Construction, first ed., Woodhead Publishing, (2019).

DOI: 10.1016/c2018-0-01352-3

Google Scholar

[4] V.I. Loganina, R. Fediuk, K. Usanova and R.Timokhin, Regularities of change in the properties of paint coatings on cement concretes at moistening, Lecture Notes in Civil Engineering. 70 (2020) 1-14.

DOI: 10.1007/978-3-030-42351-3_1

Google Scholar

[5] G.M. Bartenev, Yu.S. Zuev, Strength and destruction of highly elastic materials, Chemistry, Moscow-Leningrad, (1984).

Google Scholar

[6] G.I. Gorchakov, L.P. Orentlicher, V.I. Savin and others, Composition, structure and properties of cement concretes, Stroyizdat, Moscow, (1976).

Google Scholar

[7] S.N. Lawandy, A. Founan, N.A. Darwish, A.B. Shehata, A. Mounir, Effect of bonding systems on the adhesion of butyl rubber to polyester fabric, Journal of Adhesion Science and Technology. 11(7) (1997) 921-928.

DOI: 10.1163/156856197x00499

Google Scholar

[8] A.J. Kinloch, Adhesion and Adhesives, Science and Technology, Chapman & Hall, London, (1987).

Google Scholar

[9] N.A. de Bruyne, The physics of adhesion, Journal of Scientific Instruments. 24(2) (1947) 29-35.

Google Scholar

[10] F. Garbassi, M. Morra, E. Occhiellol, Polymer surfaces, Wiley, Chichester, (1998).

Google Scholar

[11] I. Rezaeian, P. Zahedi, A. Rezaeian, Rubber adhesion to different substrates and its importance in industrial applications: a review, Journal of Adhesion Science and Technology. 26(6) (2012) 721-744.

DOI: 10.1163/016942411x579975

Google Scholar

[12] J.Liu, S. Lin, X. Liu, Z. Qin, Y. Yang, J. Zang, Fatigue-resistant adhesion of hydrogels, Nature Communications. 11(1) (2020) 1071.

DOI: 10.1038/s41467-020-14871-3

Google Scholar

[13] P.I. Zubov, L.A. Suhareva, Structure and Properties of Polymer Pokrytiy, Chemistry, Moscow, (1982).

Google Scholar

[14] V.I. Loganina, Yu.P. Skachkov, O.V. Tarakanovand, Yu.G. Ivaschenko, Evaluation of the destruction of the coating depending on its thickness, Research Journal of Applied Sciences. 11 (2016) 891-893.

Google Scholar

[15] V.I. Loganina, Yu.P. Skachkov, The application of the holographic method for evaluation of a stress deformation state of cement paint coatings, International Journal of Applied Engineering Research. 11(14) (2016) 8377-8378.

Google Scholar

[16] L.A. Sukhareva, The Durability of Coatings, Chemistry, Moscow, (1984).

Google Scholar

[17] V.I. Loganina, Yu.P. Skachkov, Assessment of the stress state of the coating in depending on the porosity of the cement substrate, Key Engineering Materials. 737 (2017) 179-183.

DOI: 10.4028/www.scientific.net/kem.737.179

Google Scholar

[18] W. Zhu, W. Li, S. Mu, Y. Yang, X. Zuo, The adhesion performance of epoxy coating on AA6063 treated in Ti/Zr/V based solution, Applied Surface Science. 384 (2016) 333-340.

DOI: 10.1016/j.apsusc.2016.05.083

Google Scholar

[19] A.A. Almusallam, F.M. Khan, S.U. Dulaijan, O.S.B. Al-Amoudi, Effectiveness of surface coatings in improving concrete durability, Cement and Concrete Composites. 25(4-5 SPEC) (2003) 473-481.

DOI: 10.1016/s0958-9465(02)00087-2

Google Scholar

[20] S. Wu, Calculation of inter facialtension in polymer systems, J. Polym. Sci. Part C Polym. Symp. 34 (1971) 19-30.

Google Scholar

[21] S.N. Zhurkov, Time dependence of solids, Journal of Technical Physics. 23 (1953) 78-82.

Google Scholar

[22] S.N. Zhurkov, E.E. Tomashevsky, Study of the strength of solids, Journal of Technical Physics. 25 (1955) 66.

Google Scholar

[23] S.N. Zhurkov, T.P. Sanrirov, Temperature-time dependence of the strength of pure metals, Reports of the USSR Academy of Sciences. 101 (1955) 237.

Google Scholar