[1]
L.G. Kolyada, E.V. Tarasyuk, A.P. Ponomarev, V.R. Vafin, The Analysis of the Modern Packaging Materials for the Metal Products, Iron and Steel Industry. 6 (1410) (2017) 61-73.
Google Scholar
[2]
I.V. Semenova, Corrosion and Corrosion Protection, Physamatlit, Moscow, (2002).
Google Scholar
[3]
I.L. Rosenfeld, V.P. Parsiantseva, Atmospheric Corrosion Inhibitors, Nauka, Moscow, (1985).
Google Scholar
[4]
V.V. Kharionovskiy, Сorrosion protection of gas-main pipelines: modern methods and instruments, Corrosion: Materials, Protection. 5 (2017) 41-48.
Google Scholar
[5]
R.G. Kelly, J.R. Scully, D.W. Shoesmith, R.G. Buchheit, Electrochemical Techniques in Corrosion Science and Engineering, New York, Marcel Dekker, Inc., (2003).
Google Scholar
[6]
E.J. Talbot David, D.R. Talbot James, Corrosion Science and Technology, Boca Raton, CRC Press, (2018).
Google Scholar
[7]
V.L. Steblyanko, A.P. Ponomarev, Improvement of zinc coating service properties on the basis of formation its structure features in plasma-electrolytic surface treatment. Vestnik of Nosov Magnitogorsk State Technical University. 3 (2012) 37–41.
Google Scholar
[8]
Tiwari A.A Topical review on hybrid quasi-ceramic coatings for corrosion protection // Corrosion Reviews. 36 (2) (2017) 117–125.
DOI: 10.1515/corrrev-2017-0008
Google Scholar
[9]
A.N. Rogova, A.V. Rasumkov, Modern Methods of Metal Product Protection against Corrosion with Multi-Layer Combined Materials, Transport and Consumer Packaging. 6 (2002) 44-47.
Google Scholar
[10]
L.G. Kolyada, L.R. Salikhova, O.M. Katyushenko, The study of protective properties of combined packaging materials. Vestnik of Nosov Magnitogorsk State Technical University. 1 (2007) 110–112.
Google Scholar
[11]
L.G. Kolyada, E.V. Tarasyuk, S.A. Krylova, Modern packaging materials for steel products. Solid State Phenomena. 265 (2017) 1040–1047.
DOI: 10.4028/www.scientific.net/ssp.265.1040
Google Scholar
[12]
L.S. Pinchuk, A.S. Neverov, Polymer Films Containing Corrosion Inhibitors, М., Chemistry, (1993).
Google Scholar
[13]
E.V. Malakhov, V.A. Karpov, T.O. Yakubovskaya, Polymer films with LIK for metal product protection during storage. Corrosion: Materials, Protection. 8 (2004) 16–18.
Google Scholar
[14]
L.G. Kolyada, E.V. Tarasyuk, N.L. Kalugina, Technology of packing materials for metal products, Solid State Phenomena. 870 (2016) 454-459.
DOI: 10.4028/www.scientific.net/msf.870.454
Google Scholar
[15]
S.R. Filippov, O.R. Kharin, Material for Package with Volatile Corrosion Inhibitor, RU 2287466 (2006).
Google Scholar
[16]
Х. Zhang, W. He, I.O. Wallinder, J. Pan, C. Leygraf, Determination of instantaneous corrosion rates and run-off rates of copper from naturally patinated copper du-ring continuous rain events, Corrosion Science. 44 (9) (2002) 2131-2151.
DOI: 10.1016/s0010-938x(02)00015-x
Google Scholar
[17]
L.I. Antropov, E.M. Makushin, V.F. Panasenko, Metal Corrosion Inhibitors, Technika, Kiev, (1981).
Google Scholar
[18]
S. Keller, G. Reinhard, Packaging Materials Containing Volatile Corrosion Inhibitors. Protection Concept, Corrosion: Materials, Protection. 8 (2015) 24-34.
Google Scholar
[19]
D.M. Bastidas, E. Cano, E.M. Mora, Volatile corrosion inhibitors: a review, Anti-Corrosion Methods and Materials. 52 (2) (2005) 71-77.
DOI: 10.1108/00035590510584771
Google Scholar
[20]
А.А. Mikhaylov, P.V. Strekalov, Yu. M. Panchenko and others Atmospheric Metal Corrosion in Regions with Tropical and Subtropical Climate, Corrosion: Materials, Protection. 6 (2006) 2-11.
Google Scholar
[21]
Yu.I. Panchenko, P.V. Strekalov, Formation, Promotion and Removal of Atmospheric Metal Corrosion Products. Model of Integral Mass of Product Formation, Metal Protection. 41 (4) (2005) 402–416.
Google Scholar