Evaluation of the Corrosion Behavior of Reinforced Concrete with an Inhibitor by Electrochemical Impedance Spectroscopy
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Concrete Mix Proportion
2.3. Specimens
2.4. Accelerated Corrosion of Reinforced Concrete
2.5. Electrochemical Measurement
3. Result and Discussion
3.1. OCP Results
3.2. Electrochemical Results
4. Conclusions
- The embedded rebar in the C12 concrete underwent the most rapid deterioration; the rebars embedded in the normal and C12N6 concrete were corrosion initiated at the ninth week of the accelerated corrosion cycle. However, the embedded rebar in the C12N12 concrete was observed to undergo no significant deterioration at the end of 10 weeks of cycles. The passive films were significantly stable with 0.6 M LiNO2, although a concentration higher than 1.2 M LiNO2 may be required for environments having high salinity in the air, such as coastal structures.
- The polarization resistance of the normal, C12, and C12N06 concrete increased until the end of the second week of cycles and then decreased, while that of the C12N012 concrete increased until the end of the fourth week and then decreased. This is attributed to the presence of the corrosion inhibitor, LiNO2.
- C12 presented the lowest Rp at the end of 10 weeks of cycles at 31.7 Ω cm3. The Rp values of the normal, C12N06, and C12N12 samples, in increasing order, were 57.6, 113.8, and 223.8 Ω cm3, respectively. With 1.2 kg/m3 NaCl and more than 0.6 M LiNO2 added to concrete, the reinforced concrete is expected to inhibit corrosion more than the normal concrete.
- The performance of the corrosion inhibitor and the corrosion behavior of the embedded rebars in concrete were analyzed using wet–dry cycles and electrochemical techniques. In addition, it was confirmed that the corrosion of the rebar embedded in the concrete can be protected from the penetration of chloride ions using an appropriate inhibitor. Through electrochemistry and microanalysis of in/organic inhibitors, their mechanisms toward inhibiting corrosion may be considered in future research.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Name | Chemical Composition (%) | * L.O.I. | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
SiO2 | Al2O3 | TiO2 | Fe2O3 | CaO | MgO | SO3 | K2O | etc. | ||
OPC | 19.74 | 5.33 | 0.30 | 2.93 | 61.74 | 3.78 | 2.47 | 0.89 | 2.82 | 2.3 |
W/C | Unit Weight (kg/m3) | ||||
---|---|---|---|---|---|
Water | Cement | Gravel | Sand | * S.P. | |
50% | 172 | 344 | 941 | 711 | 1.03 |
No. | Name | NaCl (kg/m3) | LiNO2 | |
---|---|---|---|---|
Molar Ratio (NO2−/Cl−) | Addition (kg/m3) | |||
1 | Normal | 0.0 | 0.0 | 0.0 |
2 | C12 | 1.2 | 0.0 | 0.0 |
3 | C12N6 | 0.6 | 4.3 | |
4 | C12N12 | 1.2 | 8.6 |
Frequency range | 105–10−1 Hz |
Specimen size | Ø100 × 200 mm2 |
Cover concrete | 44 mm |
WE | Ø13 mm rebar (SD 400) |
RE | Ag/AgCl |
CE | STS 304 |
Potential of Rebar (mV) | Corrosion Probablity | ||
---|---|---|---|
CSE | SSCE | SHE | |
<−500 | <−426 | <−184 | Severe |
<−350 | <−276 | <−34 | 90% ↑ |
−350~−200 | −276~−126 | −34~+116 | 50% ↓ |
>−200 | >−126 | >+116 | 10% ↓ |
Name | Rp with Accelerated Corrosion Cycle (Ω cm2) | |||||
---|---|---|---|---|---|---|
0 | 2 | 4 | 6 | 8 | 10 | |
Normal | 100 | 172 | 94 | 99 | 82 | 58 |
C12 | 103 | 206 | 108 | 49 | 37 | 32 |
C12-N06 | 88 | 185 | 176 | 115 | 135 | 114 |
C12-N12 | 96 | 275 | 366 | 293 | 232 | 224 |
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Park, J.; Jung, M. Evaluation of the Corrosion Behavior of Reinforced Concrete with an Inhibitor by Electrochemical Impedance Spectroscopy. Materials 2021, 14, 5508. https://doi.org/10.3390/ma14195508
Park J, Jung M. Evaluation of the Corrosion Behavior of Reinforced Concrete with an Inhibitor by Electrochemical Impedance Spectroscopy. Materials. 2021; 14(19):5508. https://doi.org/10.3390/ma14195508
Chicago/Turabian StylePark, JangHyun, and MyeongGyu Jung. 2021. "Evaluation of the Corrosion Behavior of Reinforced Concrete with an Inhibitor by Electrochemical Impedance Spectroscopy" Materials 14, no. 19: 5508. https://doi.org/10.3390/ma14195508
APA StylePark, J., & Jung, M. (2021). Evaluation of the Corrosion Behavior of Reinforced Concrete with an Inhibitor by Electrochemical Impedance Spectroscopy. Materials, 14(19), 5508. https://doi.org/10.3390/ma14195508