The structure and composition of mill scale on linepipe steel formed with and without accelerated cooling conditions (ACC) was investigated and correlated to localized corrosion susceptibility. The mill scale structure/composition was investigated using scanning electron microscopy equipped with x-ray energy dispersive spectroscopy and electron backscatter diffraction, as well as x-ray diffraction. Localized dissolution of the mill scale was investigated using electrochemical techniques including open-circuit potential measurements, electrochemical impedance spectroscopy, and electrochemical noise measurements in a corrosive phase solution. The various surface analytical and electrochemical techniques indicated that the mill scale formed without ACC consists of a relatively crack-free, thick inner wüstite layer with a thinner magnetite outer layer. However, the mill scale formed with ACC comprised a magnetite layer containing islands of retained wüstite, with some evidence of magnetite/iron eutectoid formation and which exhibited a relatively high density of through-scale cracks. These cracks can provide direct paths that connect the corrosive solution to the steel substrate, leading to a more rapid breakdown of the mill scale. Additionally, the cracks can form a crevice between the mill scale and the steel surface, providing sites for pit initiation and growth. Coefficient of thermal expansion mismatch thermal stress calculations indicate that a magnetite-based scale is more susceptible to cracking/spalling than a wüstite-based scale, resulting in the ACC plate being more susceptible to localized corrosion.
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1 February 2022
Research Article|
December 28 2021
Effect of Accelerated Cooling on Linepipe Steel Mill Scale and Resulting Localized Corrosion Susceptibility
Sara E. Filice;
Sara E. Filice
*Department of Materials Science and Engineering, McMaster University, 1280 Main St. W., Hamilton, Ontario, Canada L8S 4L8.
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Joseph R. McDermid;
Joseph R. McDermid
*Department of Materials Science and Engineering, McMaster University, 1280 Main St. W., Hamilton, Ontario, Canada L8S 4L8.
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Joseph R. Kish
Joseph R. Kish
‡
*Department of Materials Science and Engineering, McMaster University, 1280 Main St. W., Hamilton, Ontario, Canada L8S 4L8.
‡Corresponding author. E-mail: [email protected].
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‡Corresponding author. E-mail: [email protected].
Online ISSN: 1938-159X
Print ISSN: 0010-9312
© 2022, AMPP
2022
CORROSION (2022) 78 (2): 168–180.
Citation
Sara E. Filice, Joseph R. McDermid, Joseph R. Kish; Effect of Accelerated Cooling on Linepipe Steel Mill Scale and Resulting Localized Corrosion Susceptibility. CORROSION 1 February 2022; 78 (2): 168–180. https://doi.org/10.5006/3936
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