Effect of Citric Acid-Modified Chitosan on Hydration Regulation and Mechanism of Composite Cementitious Material System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Specimen Preparation
2.3. Tests for Property Evaluation
2.3.1. Heat of Hydration
2.3.2. Phase Analysis
2.3.3. MIP
2.3.4. SEM
2.3.5. NMR
3. Result and Discussion
3.1. Heat of Hydration
3.2. Phase Analysis
3.3. Degree of Hydration Reaction
3.4. Changes in Content of Clinker Phase and Hydration Products
3.5. MIP
3.6. SEM
3.7. NMR
4. Conclusions
- (1)
- The addition of CAMC can delay the hydration process of cementitious materials. With the increase of CAMC dosage, the first and second hydration exothermic peaks of the slurry are delayed and the peak intensity is significantly reduced. The first exothermic peak of the CA3 sample decreased by about 40% compared to the maximum exothermic rate of the CA1 sample, and the maximum exothermic peak appeared after a delay of about 13 h, indicating that CAMC can delay the hydration of cement and significantly reduce the hydration heat release rate of the slurry, and the higher the content within a certain range, the better the effect.
- (2)
- CAMC has no effect on the type of hydration products but has a slight impact on the content of each phase of the hydration products. In the early stage of hydration, with the increase of CAMC content, the characteristic peak of CH appears delayed in time and its intensity decreases. At the age of 3 d, as the CAMC dosage increases from 0.1% to 0.3%, the CH peak intensity also gradually increases, while the C2S and C3S peak intensity decreases. In the XRD spectrum at 28 d, the peak positions of all samples are almost the same, and the intensities of CH, C2S, C3S, AFm, and other peaks are also equivalent.
- (3)
- Based on the degree of hydration reaction of cement clinker and the changes in various components and CH and AFt contents, it can be seen that with the increase of CAMC dosage, the overall hydration rate of cement slows down and the degree of hydration reaction decreases. This effect is particularly evident in the early stages of hydration. The retarding effect of CAMC mainly acts on the silicon phase, which can reduce the CH content in the system in the early stage of hydration and delay cement hydration.
- (4)
- As hydration progresses, the total porosity of each group of slurries decreases, and the volume of large pores decreases while the volume of small pores increases. In the early stage of hydration, the smaller the amount of CAMC added, the denser the structure of the hydration product. CAMC can make C-S-H gel form floccules, it can inhibit the formation of needle-like C-S-H in the early stage of hydration, and the delayed hydration effect of CAMC almost disappears in the late stage of hydration. As the content of CAMC increases, the pore size of the hardened slurry gradually refines, the proportion of large pores decreases, and the hydration microstructure becomes denser in the later stage.
- (5)
- With the increase of CAMC dosage, the strength of the Q2 peak in the slurry will decrease and the aluminum atom of Q2 (1Al) exists in the form of Alcoordination in the sample. CAMC can reduce its hydration degree and delay cement hydration.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Material | CaO | SiO2 | Al2O3 | Fe2O3 | SO3 | MgO | K2O | Na2O | TiO2 | Loss |
---|---|---|---|---|---|---|---|---|---|---|
PC | 63.62 | 19.70 | 4.45 | 2.93 | 2.93 | 1.28 | 0.68 | 0.12 | 0.27 | 3.92 |
FA | 17.60 | 65.67 | 6.84 | 0.06 | - | 0.08 | 0.04 | 0.035 | 0.015 | 9.639 |
GGBS | 40.918 | 34.125 | 15.921 | 0.53 | 2.31 | 4.60 | 0.218 | 0.364 | 0.695 | 0.319 |
Density (g/cm3) | Specific Surface Area (m2/kg) | Water Demand (wt.%) | Initial Setting Time (min) | Final Setting Time (min) | Flexural Strength (MPa) | Compressive Strength (MPa) | ||
---|---|---|---|---|---|---|---|---|
3 d | 28 d | 3 d | 28 d | |||||
3.12 | 372 | 30 | 174 | 275 | 5.10 | 8.15 | 30.75 | 54.04 |
NO. | PC | FA | GGBS | CAMC | W |
---|---|---|---|---|---|
CA1 | 340 | 110 | 60 | 0.1% | 204 |
CA2 | 340 | 110 | 60 | 0.2% | 204 |
CA3 | 340 | 110 | 60 | 0.3% | 204 |
NO.-Age | Porosity (%) | Mean Pore Diameter (nm) | Aperture Distribution Ratio (%) | |||
---|---|---|---|---|---|---|
<20 nm | 20~50 nm | 50~200 nm | >200 nm | |||
CA1-3d | 25.06 | 11.44 | 51.65 | 23.11 | 19.33 | 5.91 |
CA2-3d | 29.42 | 12.41 | 43.88 | 19.29 | 28.70 | 8.13 |
CA3-3d | 26.31 | 13.64 | 40.18 | 22.43 | 32.30 | 5.09 |
CA1-7d | 21.49 | 8.92 | 67.37 | 23.23 | 3.22 | 6.18 |
CA2-7d | 19.32 | 8.94 | 62.26 | 27.57 | 6.63 | 3.54 |
CA3-7d | 26.83 | 10.94 | 52.79 | 28.64 | 10.15 | 8.42 |
CA1-28d | 19.25 | 9.73 | 52.11 | 30.55 | 10.31 | 7.03 |
CA2-28d | 20.97 | 9.21 | 61.66 | 26.84 | 4.75 | 6.75 |
CA3-28d | 18.33 | 9.63 | 61.67 | 27.92 | 3.20 | 7.21 |
Name | Equation |
---|---|
Degree of hydration | |
Average chain length | |
Average Al/Si ratio | |
Average silicon chain length |
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Wang, L.; Qin, Z.; Wu, J.; Sheng, G.; Wang, H.; Liu, K.; Dong, X.; Wang, F.; Jiang, J. Effect of Citric Acid-Modified Chitosan on Hydration Regulation and Mechanism of Composite Cementitious Material System. Buildings 2024, 14, 41. https://doi.org/10.3390/buildings14010041
Wang L, Qin Z, Wu J, Sheng G, Wang H, Liu K, Dong X, Wang F, Jiang J. Effect of Citric Acid-Modified Chitosan on Hydration Regulation and Mechanism of Composite Cementitious Material System. Buildings. 2024; 14(1):41. https://doi.org/10.3390/buildings14010041
Chicago/Turabian StyleWang, Liguo, Zhibin Qin, Jiandong Wu, Guangxia Sheng, Han Wang, Kai Liu, Xiaobin Dong, Fengjuan Wang, and Jinyang Jiang. 2024. "Effect of Citric Acid-Modified Chitosan on Hydration Regulation and Mechanism of Composite Cementitious Material System" Buildings 14, no. 1: 41. https://doi.org/10.3390/buildings14010041
APA StyleWang, L., Qin, Z., Wu, J., Sheng, G., Wang, H., Liu, K., Dong, X., Wang, F., & Jiang, J. (2024). Effect of Citric Acid-Modified Chitosan on Hydration Regulation and Mechanism of Composite Cementitious Material System. Buildings, 14(1), 41. https://doi.org/10.3390/buildings14010041