Experimental foundation has been established for improving corrosion models for stainless steels exposed to neutral aqueous chloride media with low levels of dissolved oxygen (DO). Accurate repassivation potentials were measured for UNS S31603 and UNS S32205 alloys in chloride electrolytes at room and elevated temperatures using Tsujikawa-Hisamatsu electrochemical (THE) and cyclic potentiodynamic polarization (CPP) methods. It was observed that the repassivation potential values measured using the CPP method were lower than the ones obtained from THE method for the same environmental conditions. Cyclic polarization scans in aqueous chloride media were conducted at different reverse scan rates resulting in varied repassivation potentials. Medium-term corrosion potentials were measured in chloride media with controlled dissolved oxygen levels ranging from 20 ppb to 400 ppb. These results were used as inputs for improving model prediction for repassivation and corrosion potentials. In an extension of previous modeling studies, an improved mechanistic repassivation model was developed based on a new generalized theory that explicitly accounts for the adsorption of water rather than treating it as an ever-present background. With a flexible definition of the repassivation current density, the new repassivation model reproduces the experimental repassivation potentials obtained using THE and CPP methods. The dependence of corrosion potential on DO has been modeled using a mixed-potential model. It has been demonstrated that the effect of agitation (caused by the bubbling of oxygen) needs to be accounted for to describe the corrosion potential, especially at low DO, where mass transport is important. The combined model correctly predicts the occurrence of localized corrosion when tested against exposure data from the literature.
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1 March 2024
Research Article|
January 05 2024
Improved Test Methods and Models for Localized Corrosion Assessment of Stainless Steels in Aqueous Chloride Media with Low Dissolved Oxygen Available to Purchase
G. Sundararajan
;
G. Sundararajan
‡
*Shell Technology Centre, Plot-7, Mahadeva-Kodigehalli, Bangalore Hardware Park, Bangalore, Karnataka, India 562149.
‡Corresponding author. E-mail: [email protected].
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D. Ballal;
D. Ballal
**OLI Systems Inc., 2 Gatehall Dr., Suite 1D, Parsippany, New Jersey 07054.
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A. Anderko
;
A. Anderko
**OLI Systems Inc., 2 Gatehall Dr., Suite 1D, Parsippany, New Jersey 07054.
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S. Gururaj;
S. Gururaj
*Shell Technology Centre, Plot-7, Mahadeva-Kodigehalli, Bangalore Hardware Park, Bangalore, Karnataka, India 562149.
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T. Bos
T. Bos
*Shell Technology Centre, Plot-7, Mahadeva-Kodigehalli, Bangalore Hardware Park, Bangalore, Karnataka, India 562149.
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‡Corresponding author. E-mail: [email protected].
Received:
October 11 2023
Revision Received:
January 03 2024
Accepted:
January 03 2024
Online ISSN: 1938-159X
Print ISSN: 0010-9312
© 2024, AMPP
2024
CORROSION (2024) 80 (3): 217–240.
Article history
Received:
October 11 2023
Revision Received:
January 03 2024
Accepted:
January 03 2024
Citation
G. Sundararajan, D. Ballal, A. Anderko, S. Gururaj, T. Bos; Improved Test Methods and Models for Localized Corrosion Assessment of Stainless Steels in Aqueous Chloride Media with Low Dissolved Oxygen. CORROSION 1 March 2024; 80 (3): 217–240. https://doi.org/10.5006/4467
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