Microstructure Evolution of a Magnesium Phosphate Protective Layer on Concrete Structures in a Sulfate Environment
Abstract
:1. Introduction
2. Experimental Program
2.1. Materials
2.1.1. Concrete Materials
2.1.2. MPC Protection Layer Materials
2.2. Concrete Mixture
2.3. MPC Protection Layer Mixture
2.4. Concrete Specimens
2.5. Testing and Characterizations
2.5.1. Compressive Strength
2.5.2. Morphology Observation of Protection Layers
2.5.3. Microstructure Test
3. Results and Discussion
3.1. Compressive Strength
3.1.1. No Layer Concrete
3.1.2. MPC Layer Concrete
3.2. Appearances and Morphologies of Coated Concretes
3.2.1. 90 Days
3.2.2. 210 Days
3.2.3. 360 Days
3.3. Evolution of Microstructure of MPC Protective Layer
3.3.1. Changes in MPC Protective Layer
3.3.2. Structure of MPC Protective Layer
4. Conclusions
- (1)
- The surface of the concrete structure was divided into three parts after being exposed to the sulfate erosion environment, namely the atmosphere, adsorption, and soaking regions. Corrosion was mainly concentrated in the adsorption and soaking regions, but the corrosion features in them were quite different. That is, the damage caused by sulfate to the concrete in the soaking region was more intense than that in the adsorption region.
- (2)
- The comparison of concrete compressive strength changes demonstrates the ability of the MPC layer to improve the compressive strength and external appearance of the specimens in the sulfate environment.
- (3)
- An MPC layer can greatly enhance the resistance of concrete to sulfate attacks in sulfate environments, and is achieved by forming new complexes through reaction with sulfate ions. In this context, the layer structure is more compact than before while the bond strength between the layer and the concrete is strengthened accordingly. The resistance of the MPC layer concrete to sulfate attacks is thus enhanced significantly.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Raw Materials | SiO2 | Al2O3 | Fe2O3 | CaO | MgO | Na2O | K2O | SO3 | Other Ingredients |
---|---|---|---|---|---|---|---|---|---|
Cement | 24.55 | 7.77 | 3.62 | 54.59 | 2.68 | 0.31 | 1.50 | 2.24 | 1.2 |
Raw Materials | MgO | SiO2 | CaO | Fe2O3 |
---|---|---|---|---|
Cement | 92.85 | 2.68 | 3.14 | 1.2 |
Cement | Fine Aggregate | Coarse Aggregate | Water-to-Cement Ratio | Compressive Strength (MPa) | Equivalent Flexural Strength (MPa) |
---|---|---|---|---|---|
1 | 1.24 | 2.52 | 0.4 | 48.1 | 8.3 |
mMgO | mMgO/mP | mB/mMgO | Water-to-MPC Ratio |
---|---|---|---|
1 | 4 | 0.05 | 0.12 |
Specimens (mm3) | Protection Layer Category | Brushing Times | Quantity of Specimens |
---|---|---|---|
100 × 100 × 400 | MPC | 2 | 6 |
No layer | 2 | 6 | |
100 × 100 × 100 | MPC | 2 | 36 |
No layer | 2 | 36 |
Ca | P | Mg | N | O | Na | Si |
---|---|---|---|---|---|---|
20.6 | 8.2 | 14.4 | 6.4 | 33.4 | 4.83 | 7.35 |
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Li, J.; Ji, Y.; Huang, G.; Zhang, L. Microstructure Evolution of a Magnesium Phosphate Protective Layer on Concrete Structures in a Sulfate Environment. Coatings 2018, 8, 140. https://doi.org/10.3390/coatings8040140
Li J, Ji Y, Huang G, Zhang L. Microstructure Evolution of a Magnesium Phosphate Protective Layer on Concrete Structures in a Sulfate Environment. Coatings. 2018; 8(4):140. https://doi.org/10.3390/coatings8040140
Chicago/Turabian StyleLi, Jun, Yongsheng Ji, Guodong Huang, and Linglei Zhang. 2018. "Microstructure Evolution of a Magnesium Phosphate Protective Layer on Concrete Structures in a Sulfate Environment" Coatings 8, no. 4: 140. https://doi.org/10.3390/coatings8040140
APA StyleLi, J., Ji, Y., Huang, G., & Zhang, L. (2018). Microstructure Evolution of a Magnesium Phosphate Protective Layer on Concrete Structures in a Sulfate Environment. Coatings, 8(4), 140. https://doi.org/10.3390/coatings8040140