Crystalline Coating and Its Influence on Chloride Ion Diffusion Resistance of Carbonated Concrete
Abstract
:1. Introduction
2. Materials and Methods
2.1. Concrete Properties
2.2. Concrete Carbonation
2.3. Chloride Ion Concentration
3. Results and Discussion
3.1. Concrete Properties
3.2. Concrete Carbonation
3.3. Chloride Ion Concentration
4. Conclusions
- This experimental study confirmed the previous research presented in the scientific literature and showed that carbonation and chloride ingress are two interrelated processes. Carbonated concrete is more permeable to chloride ion ingress than uncarbonated concrete due to reduced chloride binding. The depth of the critical concentration of chloride ions in the carbonated concrete was up to 116% higher than that in the uncarbonated concrete.
- The results of this study show that crystalline coatings can significantly increase the chloride resistance of carbonated concrete. The crystalline coatings were functional even after 28 days of immersion in the sodium chloride solution when the concentration of chloride ions at depths over 5 mm was under the critical concentration. The same tendency was observed after 90 days of immersion, as the chloride ion concentration was lower than the critical concentration at a depth of 10 mm. The crystalline coating was able to reduce the concentration of chloride ions by 68% under the surface of the concrete and by 65% at depths of 20–25 mm after 180 days of immersion.
- Carbonated concrete treated with a crystalline coating showed chloride ion concentrations below the critical concentration at a depth of 13.45 mm at 180 days of immersion. At the same time of immersion, steel reinforcement in untreated concrete would be fully located in the critical chloride concentration area.
- The results of this study show that crystalline coatings can be used in various applications as an effective solution to protect concrete against chloride ingress, e.g., in marine structures or structures burdened by winter maintenance.
- It can be assumed that the performance of crystalline coatings, in terms of improving resistance to chloride ingress, is at least the same as that of crystalline admixtures. To confirm this comparison of the effectiveness of crystalline coatings and admixtures, additional experimental research should be performed.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Material | Specification | Volume (kg/m3) |
---|---|---|
Cement | CEM I 42.5 R | 300 |
Water | w/c 0.51 | 153 |
Aggregate | 0–4 mm | 855 |
Aggregate | 4–8 mm | 270 |
Aggregate | 8–16 mm | 870 |
Designation | Specification | Depth of Critical Concentration (mm) | ||
---|---|---|---|---|
28 Days | 90 Days | 180 Days | ||
C | Concrete after 28 days | 4.14 | 6.47 | ˃25 |
CC | Carbonated concrete | 8.95 | 12.00 | ˃25 |
CCX | Carbonated concrete with crystalline coating | 4.41 | 7.05 | 13.45 |
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Mottl, M.; Pazderka, J.; Reiterman, P. Crystalline Coating and Its Influence on Chloride Ion Diffusion Resistance of Carbonated Concrete. Coatings 2025, 15, 163. https://doi.org/10.3390/coatings15020163
Mottl M, Pazderka J, Reiterman P. Crystalline Coating and Its Influence on Chloride Ion Diffusion Resistance of Carbonated Concrete. Coatings. 2025; 15(2):163. https://doi.org/10.3390/coatings15020163
Chicago/Turabian StyleMottl, Martin, Jiří Pazderka, and Pavel Reiterman. 2025. "Crystalline Coating and Its Influence on Chloride Ion Diffusion Resistance of Carbonated Concrete" Coatings 15, no. 2: 163. https://doi.org/10.3390/coatings15020163
APA StyleMottl, M., Pazderka, J., & Reiterman, P. (2025). Crystalline Coating and Its Influence on Chloride Ion Diffusion Resistance of Carbonated Concrete. Coatings, 15(2), 163. https://doi.org/10.3390/coatings15020163