Evaluation of Half-Cell Potential Measurements for Reinforced Concrete Corrosion
Abstract
:1. Introduction
2. Experimentation
2.1. Material
2.2. Test Specimens
2.3. Corrosion Process
2.4. Half-Cell Potential Test
2.5. Flexural Behavior
3. Experimental Results and Discussion
3.1. Flexural Behavior
3.2. Analysis of Half-Cell Potential Measurements
3.3. Correlation between Half-Cell Potential Measurements and Four-Point Loading Test
4. Conclusions and Recommendations for Future Research
- The objective of this study was to provide a better understanding of the strength-deformation behavior of corroded members. Based on the test results, it was observed that the failure patterns of the corroded beams were generally similar to the control beams. However, it was observed that the ultimate capacity of the RC beams decreased, while the stiffness and ductility increased with the duration of accelerated corrosion.
- The ductility increased with increasing half-cell potential, while the flexural capacity decreased with increasing half-cell potential. The increase in ductility was 114.4% of residual deflection and the decrease in flexural capacity was 16% lower than that of control beams at the maximum half-cell potential.
- We observed a relatively strong correlation between the average potential difference and the degradation in the flexural capacity of the beams (Pearson’s correlation = 0.93. Thus, the potential difference can be used as an indicator of the degradation level in RC members.
- To propose a practical procedure for evaluating the flexural capacity of corroded members using half-cell potential measurements, further experimental research on corroded members, together with analytical analysis such as finite element analysis, should be performed. This practical procedure may aspire to derive a degradation factor formula that uses half-cell potential measurements to predict the capacity of corrosion-damaged members.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Half-Cell Potential Values | Probability of Corrosion |
---|---|
less negative than −200 mV | 10% probability of corrosion |
between −200 mV and −350 mV | Approximately 50% |
more negative than −350 mV | 90% probability of corrosion |
Size | Grade | Yield Strength, Fy (MPa) | Ultimate Strength, Fu (MPa) | Elongation % |
---|---|---|---|---|
6 mm | G40 | 290 | 353 | 14 |
10 mm | G60 | 441.8 | 657 | 12.9 |
12 mm | G60 | 435.5 | 631 | 14.7 |
14 mm | G60 | 463 | 640 | 16 |
Case | Beam Designation | Ultimate Load (kN) | Max Deflection (mm) | Toughness (J) | Stiffness (MN/m) |
---|---|---|---|---|---|
1 | Control beam | 86.2 | 13.9 | 877.5 | 13.75 |
2 | Corroded beams | 72.7 (84%) * | 15.80 (114%) * | 928.0 (106%) * | 15.21 (111%) * |
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Almashakbeh, Y.; Saleh, E.; Al-Akhras, N.M. Evaluation of Half-Cell Potential Measurements for Reinforced Concrete Corrosion. Coatings 2022, 12, 975. https://doi.org/10.3390/coatings12070975
Almashakbeh Y, Saleh E, Al-Akhras NM. Evaluation of Half-Cell Potential Measurements for Reinforced Concrete Corrosion. Coatings. 2022; 12(7):975. https://doi.org/10.3390/coatings12070975
Chicago/Turabian StyleAlmashakbeh, Yousef, Eman Saleh, and Nabil M. Al-Akhras. 2022. "Evaluation of Half-Cell Potential Measurements for Reinforced Concrete Corrosion" Coatings 12, no. 7: 975. https://doi.org/10.3390/coatings12070975
APA StyleAlmashakbeh, Y., Saleh, E., & Al-Akhras, N. M. (2022). Evaluation of Half-Cell Potential Measurements for Reinforced Concrete Corrosion. Coatings, 12(7), 975. https://doi.org/10.3390/coatings12070975