Corrosion of Reinforced A630-420H Steel in Direct Contact with NaCl Solution
Abstract
:1. Introduction
2. Experimental Section
2.1. Electrochemical Measurements
- (i)
- Electrodes for linear sweep voltammetry (LSV) measurements: The electrodes were fabricated from a cylindrical rod of the specimen with a diameter of 4 mm and a length of 10 mm. The electrodes were concentrically inserted into a PTFE tube with a diameter of 8 mm and sealed with epoxy resin (Figure 2a). The electrochemical measurements were performed using a rotating disc electrode (RDE) interface at a rotation rate of 1200 rpm.
- (ii)
- Electrodes for weight-loss (WL) measurements: The electrodes were cylindrical bars measuring 10 cm in length and 10 mm in diameter. The electrodes were immersed in the test solution under open circuit potential (OCP) conditions for 48 h while rotating at 1200 rpm (Figure 2b). The electrodes were designed with a threaded extension to be coupled to a motor shaft adaptor, and an O-ring seal was used to keep the threaded section dry while the steel specimen was immersed in the electrolyte. This electrode design prevents the occurrence of crevice corrosion and ensures that reliable weight-loss measurements can be obtained.
- (iii)
- Electrodes to simulate mechanical stress conditions: The electrodes were fabricated using a 160 mm long and 6 mm diameter bar. The upper parts of these electrodes were bent to simulate the mechanical stress conditions experienced by construction bars (Figure 2c). The curved electrodes were exposed to the test solution for 288 h under OCP and stationary hydrodynamic conditions. Several LSV measurements were conducted during this period.
2.2. Kinetic Analysis
2.3. Surface Analysis
3. Result and Discussion
3.1. Corrosion Analysis via Electrochemical Polarization
3.2. Corrosion Analysis via Weight-Loss Measurements
3.3. Corrosion Analysis under Mechanical Stress Conditions of the Electrode
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | NaCl, M | ||
---|---|---|---|
0.01 | 0.1 | 0.5 | |
, A/m2 | 0.34 | 0.32 | 0.10 |
, mV/SHE | 490 | 349 | 212 |
, A/m2 | −3.27 × 10−2 | −1.62 × 10−4 | −7.35 × 10−5 |
, mV/SHE | −525 | −263 | −247 |
, A/m2 | −16.2 | −12.8 | −11.3 |
, A/m2 | −0.01 | −0.29 | −0.39 |
, mV/SHE | −228 | −276 | −270 |
, mV/SHE | −186 | −293 | −320 |
, A/m2 | 2.63 | 2.80 | 3.02 |
Parameter | Steel Type in Aerated 0.5 M NaCl | Steel Type in De-Aerated 0.5 M NaCl | ||||
---|---|---|---|---|---|---|
A36 | AISI 1020 | A360-420H | A36 | AISI 1020 | A360-420H | |
, A/m2 | 1.46 × 10−7 | 2.96 × 10−6 | 0.10 | 9.41 × 10−3 | 0.01 | 2.33 |
, mV/SHE | 57 | 65 | 212 | 107 | 104 | 358 |
, A/m2 | −5.69 × 10−5 | −3.35 × 10−5 | −7.35 × 10−5 | - | - | - |
, mV/SHE | −240 | −227 | −247 | - | - | - |
, A/m2 | −8.1 | −8.3 | −11.3 | - | - | - |
, A/m2 | −0.02 | −0.03 | −0.39 | −0.06 | −0.05 | −0.25 |
, mV/SHE | −196 | −198 | −270 | −215 | −211 | −238 |
, mV/SHE | −221 | −247 | −320 | −492 | −507 | −625 |
, A/m2 | 1.36 | 1.74 | 3.02 | 0.15 | 0.16 | 2.29 |
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Madrid, F.M.G.; Soliz, A.; Cáceres, L.; Salazar-Avalos, S.; Guzmán, D.; Gálvez, E. Corrosion of Reinforced A630-420H Steel in Direct Contact with NaCl Solution. Materials 2023, 16, 6017. https://doi.org/10.3390/ma16176017
Madrid FMG, Soliz A, Cáceres L, Salazar-Avalos S, Guzmán D, Gálvez E. Corrosion of Reinforced A630-420H Steel in Direct Contact with NaCl Solution. Materials. 2023; 16(17):6017. https://doi.org/10.3390/ma16176017
Chicago/Turabian StyleMadrid, Felipe M. Galleguillos, Alvaro Soliz, Luis Cáceres, Sebastian Salazar-Avalos, Danny Guzmán, and Edelmira Gálvez. 2023. "Corrosion of Reinforced A630-420H Steel in Direct Contact with NaCl Solution" Materials 16, no. 17: 6017. https://doi.org/10.3390/ma16176017
APA StyleMadrid, F. M. G., Soliz, A., Cáceres, L., Salazar-Avalos, S., Guzmán, D., & Gálvez, E. (2023). Corrosion of Reinforced A630-420H Steel in Direct Contact with NaCl Solution. Materials, 16(17), 6017. https://doi.org/10.3390/ma16176017