Effect of a Nitrite/Nitrate-Based Accelerator on the Strength Development and Hydrate Formation in Cold-Weather Cementitious Materials
Abstract
:1. Introduction
2. Experimental Overview
2.1. Materials and Procedures
2.2. Compressive Strength
2.3. Mercury Intrusion Porosimetry (MIP)
2.4. Calorimeter
2.5. Condensation Test
2.6. Thermogravimetric Differential Thermal Analysis
2.7. X-ray Diffraction
2.8. Solid-State Nuclear Magnetic Resonance
2.9. Scanning Electron Microscope (SEM)
3. Results and Discussion
3.1. Evaluation of the Strength Development in the Early Age Group
3.2. Effect of Calcium Nitrite on Setting Characteristics
3.3. Effect of CN Addition on the Hydration of Portland Cement
3.4. Thermogravimetric Differential Thermal analysis
3.5. X-ray Diffraction
3.6. 27Al MAS NMR
3.7. Crystal Form
4. Conclusions
- (1)
- When CN was added, the rate of ion elution from the cement clinker increased owing to the effect of NO2− and NO3− ions, and the rate of hydrate formation increased (especially within 12 h).
- (2)
- The addition of CN accelerates the usual hydration reactions (C3A, C3S) that occur in the cement matrix, while additionally forming nitrite/nitrate-AFm through the reaction between C3A and NO2−, NO3− ions. The hydrate generated effectively contributes to strength development by filling the pores.
- (3)
- Nitrite/nitrate-AFm was rapidly deposited as hexagonal-plate crystals immediately after contact with water, and the production amount tended to increase as the amount of added CN increased.
- (4)
- By adding CN, hexagonal plate-like crystals, which are presumed to be nitrite/nitrate-AFm, were confirmed in a wide range, and these are considered to contribute significantly to the strength development at an early age.
- (5)
- Furthermore, the calorimeter, TG/DTG, and SEM results reveal that the hydration acceleration of C3S also contributes to the filling of pores and strength development.
- (6)
- When nitrite/nitrate-based accelerator is added, it accelerates the hydration reaction of the initial cement and greatly contributes to the development of strength, so that problems such as delay in setting and initial frost damage in cold-weather concrete works can be improved. Furthermore, by enabling early demolding, the overall construction period can be shortened. However, there is a concern that the amount of expansion and contraction will increase due to the promotion of hydration, and there may be problems such as cracking due to heat of hydration, so it is necessary to adjust the amount used.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Materials (Code) | Properties |
---|---|
Cement (C) | Ordinary Portland Cement, Density; 3.16 g/cm3 |
Anti-freezing agent (CN) | Main component; calcium nitrite, calcium nitrate (45% water solution), Density; 1.43 g/cm3 |
Component | Component Ratio | Density of Aquarius Solution (g/cm3) | pH Aquarius Solution |
---|---|---|---|
Ca(NO2)2 | 23.02% | 1.43 | 9.3 |
Ca(NO3)2 | 22.81% |
Chemical Composition (%) | |||||||||
---|---|---|---|---|---|---|---|---|---|
Ordinary Portland Cement | SiO2 | Al2O3 | Fe2O3 | CaO | MgO | SO3 | CaSO4 | Ig.loss | Alkali Content |
21.4 | 5.5 | 2.8 | 64.3 | 2.1 | 1.9 | - | 0.56 | 0.25 |
Type | W/C (%) | Unit Content (kg/m3) | Anti-Freezing Agent (C × %) | |
---|---|---|---|---|
W | C | CN | ||
CN0 | 50 | 612 | 1225 | 0 |
CN7 | 7 | |||
CN9 | 9 | |||
CN11 | 11 | |||
CN13 | 13 |
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Yoneyama, A.; Choi, H.; Inoue, M.; Kim, J.; Lim, M.; Sudoh, Y. Effect of a Nitrite/Nitrate-Based Accelerator on the Strength Development and Hydrate Formation in Cold-Weather Cementitious Materials. Materials 2021, 14, 1006. https://doi.org/10.3390/ma14041006
Yoneyama A, Choi H, Inoue M, Kim J, Lim M, Sudoh Y. Effect of a Nitrite/Nitrate-Based Accelerator on the Strength Development and Hydrate Formation in Cold-Weather Cementitious Materials. Materials. 2021; 14(4):1006. https://doi.org/10.3390/ma14041006
Chicago/Turabian StyleYoneyama, Akira, Heesup Choi, Masumi Inoue, Jihoon Kim, Myungkwan Lim, and Yuhji Sudoh. 2021. "Effect of a Nitrite/Nitrate-Based Accelerator on the Strength Development and Hydrate Formation in Cold-Weather Cementitious Materials" Materials 14, no. 4: 1006. https://doi.org/10.3390/ma14041006
APA StyleYoneyama, A., Choi, H., Inoue, M., Kim, J., Lim, M., & Sudoh, Y. (2021). Effect of a Nitrite/Nitrate-Based Accelerator on the Strength Development and Hydrate Formation in Cold-Weather Cementitious Materials. Materials, 14(4), 1006. https://doi.org/10.3390/ma14041006