Prospect of Identification of Different Corrosion Product by Near-IR Photography

Article Preview

Abstract:

The present work is a preliminary work on the development of NIR camera photograph as alternative tool for corrosion product identification. Corrosion products were taken from two different carbon steel tubes side, one is from thinning tube side, the other is from normal tube side. From optical microscope data, it was observed that the thinning tube side surface has elongated microstructure while the other has normal microstructure. It was also observed that more stable oxide in the form of hematite formed on the thinning tube side, while the other side has siderite and magnetite as the corrosion product. From NIR camera photograph on the scale of both tubes side, it was obtained significant differences in the digital image number. It is expected that after further comprehensive collecting digital image number data on the various corrosion product as well as thickness layer, NIR camera photograph can be used as an alternative method for corrosion product identification.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 718-720)

Pages:

1185-1190

Citation:

Online since:

July 2013

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] L.S. Van Delinder, Corrosion Basic, An Introduction, NACE, Houston, (1984)

Google Scholar

[2] G.H. Koch, M.P.H. Brongers, N.G. Thompson, Y.P. Virmani, J.H. Payer, Corrosion cost and preventive strategies in the United States, FHWA, Washington D.C., (2001)

Google Scholar

[3] M. Carbucicchio, R. Ciprian, F. Ospitali, G. Palombarini, Morphology and phase composition of corrosion products formed at the zinc-iron interface of a galvanized steel, Corr. Sci. 50 (2008) 2605-2613

DOI: 10.1016/j.corsci.2008.06.007

Google Scholar

[4] A. Doménech, M. Lastras, F.Rodríguez, L. Osete, Mapping of corrosion products of highly altered archeological iron using voltammetry of microparticles, Micro-chem.J. 106 (2013) 41-50

DOI: 10.1016/j.microc.2012.05.002

Google Scholar

[5] D. Šatović, S. Martinez, A. Bobrowski, Electrochemical identification of corrosion products on historical and archaeological bronzes using the voltammetry of micro-particles attached to a carbon paste electrode, Talanta. 81 (4–5) (2010) 1760-1765

DOI: 10.1016/j.talanta.2010.03.037

Google Scholar

[6] R. Kötz, S. Stucki, D. Scherson, D.M. Kolb, In-situ identification of RuO4 as the corrosion product during oxygen evolution on ruthenium in acid media, Journal of Electro-analytical Chemist. and Interfacial Electrochem.172 (1–2) (1984) 211-219

DOI: 10.1016/0022-0728(84)80187-4

Google Scholar

[7] D. C. Cook. Spectroscopic identification of the protective and non-protective corrosion coating on steel structures in marine environments, Corrosion Sci. 47(10) (2005) 2550-2570

DOI: 10.1016/j.corsci.2004.10.018

Google Scholar

[8] R.E. Hummel, R.J. Smith, E.D. Verink Jr., The passivation of nickel in aqueous solution-I.The identification of insoluble corrosion products on nickel electrodes using optical and ESCA techniques. Corrosion Sci. 27(8) (1987) 803-813

DOI: 10.1016/0010-938x(87)90038-2

Google Scholar

[9] B. MacDougall. On the passivation of nickel in aqueous solution-I.The identification of insoluble corrosion products on nickel electrodes using optical and ESCA techniques: by R.E. Hummel, R.J. Smith, E.D. Verink Jr.(pp.803-813, vol 27, No.8), Corrosion Sci. 28(2) (1988) 211-216

DOI: 10.1016/0010-938x(87)90038-2

Google Scholar

[10] F. Dubois, C. Mendibide, T. Pagnier, F. Perrard, C. Duret. Raman mapping of corrosion products formed onto spring steels during salt spray experiments. A correlation between the scale composition and the corrosion resistance, Corrosion Sci. 50(12) (2008) 3401-3409

DOI: 10.1016/j.corsci.2008.09.027

Google Scholar

[11] M.Amme, B. Renker, B Schmid, M.P Feth, H Bertagnolli, W Dobelin. Raman microspectrometric identification of corrosion products formed on UO2 nuclear fuel during leaching experiments, Journal of Nuclear Mater. 306(2-3) (2002) 202-212.

DOI: 10.1016/s0022-3115(02)01291-6

Google Scholar