Effect of an Early-Age Exposure on the Degradation Mechanisms of Cement Paste under External Sulfate Attack
Abstract
:1. Introduction
2. Materials and Methods
2.1. Formulations and Exposure Conditions
2.2. Accelerated Test for ESA
2.3. Experimental Techniques for Investigation
3. Results
3.1. Expansion Measurements
3.2. Sulfates Profiles
3.3. Chemical Mechanisms
3.4. Microstructure Changes
4. Discussions
5. Conclusions
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- The sulfate profiles in the two curing cases are similar, with a slight difference in the maximum sulfate content. There is a more significant effect in the first three millimeters when the exposure occurs at an early age. During this early curing, the material is highly porous and permeable. Chemical interactions with the cement matrix delay sulfate ingress.
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- The physical and chemical interactions with cement paste hydrates appear to have faster kinetics than diffusion through concentration gradients and capillary adsorption. This finding confirms that ESA is characterized by both the diffusion and binding of sulfate ions in the cement matrix, with mainly a chemical fixation.
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- Matured Portland cement paste showed rapid degradation. This is due to the presence of a significant quantity of compressed ettringite and gypsum, as highlighted by SEM analysis. On the other hand, Portland cement pastes that were exposed to sulfate solution early in the process did not develop cracks or spalls after one year of exposure.
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- Although AFt formation is known to cause the degradation of cementitious materials when they are exposed to sulfate ions, the chemical mechanism varies with curing duration. At an early age, the main reagents are external sulfates and aluminates from the anhydrous cement and part of AFm. In the mature exposition case, these reagents are external sulfates, calcium derived from the dissolution of CH and decalcification of C-S-H, and aluminates derived from the total dissolution of AFm.
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Chemical Composition (%) | CEM I |
---|---|
CaO | 62.81 |
SiO2 | 20.22 |
Al2O3 | 4.85 |
Fe2O3 | 2.92 |
CaO (free) | 1.58 |
MgO | 0.84 |
SO3 | 2.88 |
S | 0 |
K2O | 0.77 |
Na2O | 0.34 |
Ignition Loss | 2.59 |
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Metalssi, O.O.; Ragoug, R.; Barberon, F.; Lacaillerie, J.-B.d.d.; Roussel, N.; Divet, L.; Torrenti, J.-M. Effect of an Early-Age Exposure on the Degradation Mechanisms of Cement Paste under External Sulfate Attack. Materials 2023, 16, 6013. https://doi.org/10.3390/ma16176013
Metalssi OO, Ragoug R, Barberon F, Lacaillerie J-Bdd, Roussel N, Divet L, Torrenti J-M. Effect of an Early-Age Exposure on the Degradation Mechanisms of Cement Paste under External Sulfate Attack. Materials. 2023; 16(17):6013. https://doi.org/10.3390/ma16176013
Chicago/Turabian StyleMetalssi, Othman Omikrine, Rim Ragoug, Fabien Barberon, Jean-Baptiste d’Espinose de Lacaillerie, Nicolas Roussel, Loïc Divet, and Jean-Michel Torrenti. 2023. "Effect of an Early-Age Exposure on the Degradation Mechanisms of Cement Paste under External Sulfate Attack" Materials 16, no. 17: 6013. https://doi.org/10.3390/ma16176013
APA StyleMetalssi, O. O., Ragoug, R., Barberon, F., Lacaillerie, J. -B. d. d., Roussel, N., Divet, L., & Torrenti, J. -M. (2023). Effect of an Early-Age Exposure on the Degradation Mechanisms of Cement Paste under External Sulfate Attack. Materials, 16(17), 6013. https://doi.org/10.3390/ma16176013