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Duplex Anti-Corrosion Protection of Steel Using a Combination of Hot-Dip Galvanising and Water-Soluble Paints


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ABDALLA, K. – IDRESS, A. A. – ALESLABI, A. – YACOUB, N. – SALAH, N. 2020. Corrosion resistance of zinc phosphate coating formed on steel surface with different concentrations of zinc sulphate. In Third International Conference on Technical Sciences (ICST2020), 28–30 November 2020, Tripoli – Libya, pp. 732–735. Search in Google Scholar

BARBATO, R. – BOI, R. – RAGAZZINI, R. 2002. Determination of micro-indentation hardness of organic coatings. In VDI Berichte, vol. 1685, pp. 373–378. Search in Google Scholar

ČSN EN ISO 1461. 2010. Hot dip galvanized coatings on fabricated iron and steel articles – Specifications and test methods. Praha: Czech Standards Institute. Search in Google Scholar

ČSN EN ISO 1460. 1997. Metallic coatings – Hot dip galvanized coatings on ferrous materials – Gravimetric determination of the mass per unit area. Praha: Czech Standards Institute. Search in Google Scholar

ČSN EN ISO 4624. 2016. Paints and varnishes – Pull-off test for adhesion. Praha: Czech Standards Institute. Search in Google Scholar

ČSN EN ISO 1520. 2007. Paint and varnishes – Cupping test. Praha: Czech Standards Institute. Search in Google Scholar

ČSN EN ISO 9227. 2017. Corrosion tests in artificial atmospheres – Salt spray tests. Praha: Czech Standards Institute. Search in Google Scholar

ČSN EN ISO 2808. 2020. Paints and varnishes – Determination of film thickness. Praha: Czech Standards Institute. Search in Google Scholar

FERNÁNDEZ-PÉREZ, B. M. – GONZÁLEZ-GUZMÁN, J. A. – GONZÁLEZ, S. – SOUTO, R. M. 2014. Electrochemical impedance spectroscopy investigation of the corrosion resistance of a waterborne acrylic coating containing active electrochemical pigments for the protection of carbon steel. In International Journal of Electrochemical Science, vol. 9, no. 4, pp. 2067–2079. Search in Google Scholar

GALLIANO, F. – LANDOLT, D. 2002. Evaluation of corrosion protection properties of additives for waterborne epoxy coatings on steel. In Progress in Organic Coatings, vol. 44, no. 3, pp. 217–225. Search in Google Scholar

GEE, S. 1997. Water-borne coatings for steel. In Surface Coatings International, vol. 80, no. 7, pp. 316–320. Search in Google Scholar

KUKLÍK, V. – KUDLÁČEK, J. 2014. Hot dip galvanizing. Praha: Czech and Slovak Galvanizers Association, 208 pp. ISBN 978-80-905298-2-3. Search in Google Scholar

LUPTÁKOVÁ, N. – KEBÍSKOVÁ, J. – ANISIMOV, E. – BENÁK, M. – PEŠLOVÁ, F. 2012. Impact raw material for production zinc oxide in retort furnaces. In METAL – 21st International Conference on Metallurgy and Materials, pp. 1521–1526. Search in Google Scholar

LUPTÁKOVÁ, N. – PEŠLOVÁ, F. – KLIBER, J. 2015. The study and microstructure analysis of zinc and zinc oxide. In Metalurgija (Metallurgy), vol. 54, no. 1, pp. 43–46. Search in Google Scholar

POLÁKOVÁ, N. – DOSTÁL, P. – VOTAVA, J. 2018. TIG welding of stainless steel and titanium with additive AG 104. In MendelNet: Proceedings of International PhD Students Conference, pp. 468–471. ISBN 978-80-7509-597-8. Search in Google Scholar

ROMAGNOLI, R. – VETERE, V. F. 1995. Heterogeneous reaction between steel and zinc phosphate. In Corrosion, vol. 51, no. 2, pp. 116–123. Search in Google Scholar

ROSELLI, S. N. – LENDVAY-GYÖRIK, G. – MÉSZÁROS, G. – DEYÁ, C. –ROMAGNOLI, R. 2017. Anticorrosive water borne paints free from zinc and with reduced phosphate content. In Progress in Organic Coatings, vol. 112, pp. 27–36. Search in Google Scholar

SPENGLER, E. – FRAGATA, F. L. – MARGARIT, I. C. P. – MATTOS, O. R. 1997. Corrosion protection of low toxicity paints. In Progress in Organic Coatings, vol. 30, no. 1–2, pp. 51–57. Search in Google Scholar

ŠMAK, R. – VOTAVA, J. – POLCAR, A. 2020. The cooling media influence on selected mechanical properties of steel. In Acta Technologica Agriculturae, vol. 23, no. 4, pp. 183–189. Search in Google Scholar

VOTAVA, J. – KUMBÁR, V. 2017. Usage of waterborne acrylate anticorrosion systems for ecological environment. In Manufacturing Technology, vol. 17, no. 1, pp. 103–110. Search in Google Scholar

VOTAVA, J. – KUMBÁR, V. – POLCAR, A. – FAJMAN, M. 2020. Change of mechanical properties of zinc coatings after heat treatment. In Acta Technologica Agriculturae, vol. 23, no. 1, pp. 7–11. Search in Google Scholar

VOTAVA, J. – KUMBÁR, V. – POLCAR, A. 2016. Degradation processes in anticorrosive coatings for machinery designed for fertiliser application. In Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, vol. 64, no. 4, pp. 1257–1265. Search in Google Scholar

VOTAVA, J. – JUKL, M. – POLCAR, A. – KUMBÁR, V. – DOSTÁL, P. 2018. Anti-corrosion systems in vehicles for the transportation and application of fertilizers. In Kovové Materiály – Metallic Materials, vol. 56, no. 2, pp. 131–136. Search in Google Scholar

WEGMANN, A. 1997. Chemical resistance of waterborne epoxy/amine coatings. In Progress in Organic Coatings, vol. 32, no. 1–4, pp. 231–239. Search in Google Scholar

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