Sulfate Freeze–Thaw Resistance of Magnesium Potassium Phosphate Cement Mortar according to Hydration Age
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Specimen Preparation
2.3. Experimental Methods
3. Results and Discussion
3.1. Material Analysis and Mix Ratio
3.2. Flexural Strength Development
3.3. Compressive Strength Development
3.4. Volume Deformation
3.5. Water Absorption
3.6. XRD Analysis
3.7. SEM-EDS Analysis
3.8. TG-DTG
4. Conclusions
- (1)
- After 225 freeze–thaw cycles in water, the flexural strengths of specimens M-1d and M-28d were 36.7% and 29.0% of their initial values, respectively, while the compressive strengths were 37.2% and 32.9% of their initial values. After 225 cycles in sulfate solution, the flexural strengths of M-1d and M-28d were 45.1% and 36.0% of their initial values, respectively, and the compressive strengths were 47.4% and 42.1% of their initial values. The results show that, under freeze–thaw conditions, the degree of strength reduction in MKPC mortar with 1 d hydration is similar to that with 28 d hydration. Furthermore, the strength reduction is lower in sulfate solution than in water.
- (2)
- After 225 freeze–thaw cycles, the volume expansion rates of specimens M-1d and M-28d were 0.487% and 1.047% in water and 0.518% and 1.308% in sulfate solution, respectively. Hence, MKPC mortar under freeze–thaw conditions has better deformation resistance with 1 d hydration than with 28 d hydration.
- (3)
- Although the open porosity of specimen M-1d was higher than that of M-28d before freeze–thaw testing, it became lower after 125 freeze–thaw cycles. This indicates that freeze–thaw cycling more strongly degraded the pore structure of M-28d than that of M-1d. The open porosity of MKPC mortar specimens subjected to freeze–thaw cycling was lower in sulfate solution than in water, which proves that salt crystallization and precipitation can improve the pore structure of hardened MKPC bodies to some extent.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Oxide Species | MgO | SiO2 | CaO | Fe2O3 | Al2O3 | Na2O | TiO2 | Other |
---|---|---|---|---|---|---|---|---|
Content (%) | 91.85 | 3.68 | 3.14 | 0.865 | 0.17 | - | - | 0.285 |
Type | Speciation | Fineness Modulus | Clay Content (%) | Bulk Density (kg/m3) | Particle Gradation |
---|---|---|---|---|---|
Ordinary river sand | Medium sand | 2.53 | 0.8 | 1450.00 | Zone II (JGJ52-2006) |
Limestone sand | Coarse sand | 3.65 | 0.00 | 1460.00 | Zone II (JGJ52-2006) |
Code | Mass Ratio/% | |||||
---|---|---|---|---|---|---|
WMgO/ WKH2PO4 | WCR/ WMKPC | WS/WMKPC | WRS/WS | WLS/ WS | Ww/ WMKPC | |
M | 150 | 8 | 150 | 33.3 | 66.7 | 17 |
Element | O | Mg | S | P | Cl | K | Ca | Na | |
---|---|---|---|---|---|---|---|---|---|
Atomic percentage (%) | Area A | 68.45 | 12.52 | - | 8.79 | - | 10.24 | - | - |
Area B | 68.72 | 10.70 | - | 9.47 | - | 9.78 | 1.33 | - | |
Area C | 70.11 | 10.96 | - | 9.87 | - | 9.06 | - | - | |
Area D | 72.92 | 8.95 | - | 9.59 | - | 8.54 | - | - | |
Area E | 73.45 | 8.56 | 2.45 | 7.53 | 0.13 | 5.93 | 1.52 | 0.43 | |
Area F | 74.33 | 6.41 | 1.99 | 6.12 | - | 6.57 | 3.70 | 0.88 | |
Area G | 72.3 | 10.36 | - | 8.12 | - | 9.22 | - | - | |
Area H | 73.52 | 8.43 | - | 6.95 | - | 6.07 | 2.11 | 2.92 | |
Area I | 66.35 | 7.47 | 2.56 | 8.85 | 0.35 | 9.55 | 2.86 | 2.01 |
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Ji, R.-J.; Li, T.; Yang, J.-M.; Xu, J. Sulfate Freeze–Thaw Resistance of Magnesium Potassium Phosphate Cement Mortar according to Hydration Age. Materials 2022, 15, 4192. https://doi.org/10.3390/ma15124192
Ji R-J, Li T, Yang J-M, Xu J. Sulfate Freeze–Thaw Resistance of Magnesium Potassium Phosphate Cement Mortar according to Hydration Age. Materials. 2022; 15(12):4192. https://doi.org/10.3390/ma15124192
Chicago/Turabian StyleJi, Rong-Jian, Tao Li, Jian-Ming Yang, and Jun Xu. 2022. "Sulfate Freeze–Thaw Resistance of Magnesium Potassium Phosphate Cement Mortar according to Hydration Age" Materials 15, no. 12: 4192. https://doi.org/10.3390/ma15124192
APA StyleJi, R. -J., Li, T., Yang, J. -M., & Xu, J. (2022). Sulfate Freeze–Thaw Resistance of Magnesium Potassium Phosphate Cement Mortar according to Hydration Age. Materials, 15(12), 4192. https://doi.org/10.3390/ma15124192