Effect of Aluminium Substitution on Physical Adsorption of Chloride and Sulphate Ions in Cement-Based Materials
Abstract
:1. Introduction
2. Experiment
2.1. Materials
2.2. Test Scheme
- (1)
- The size of the concrete test block is 150 × 150 × 150 mm. To create one-dimensional erosion conditions, four sides of the specimen were coated with epoxy resin to form a hydrophobic protective layer on all sides.
- (2)
- A mixture of NaCl and Na2SO4 was used to prepare the erosion solvent, in which the chloride and sulphate contents were arranged in the order 0%, 2%, 4%, 6%, and 8%, with a total of 25 different ratios (including the control group).
- (3)
- Drill holes for extracting powder.
- (4)
- Determination of chloride and sulphate ion content
2.3. Simulation Methods and Parameters
3. Results and Discussion
3.1. C-A-S-H Adsorption Sites
3.1.1. Cl− Adsorption by C-A-S-H
3.1.2. SO42− Adsorption by C-A-S-H
3.2. C-A-S-H versus C-S-H Adsorption Capacity
3.3. Verification
4. Conclusions
- (1)
- Based on the simulation results obtained, it was found that the C-A-S-H model demonstrated physical adsorption of SO42− and Cl−. Upon substituting Al, Ca2+ was adsorbed on the C-A-S-H model surface due to the charge compensation effect. This results in an increased zeta potential of the model surface, leading to the formation of a double layer structure that enhances the long-range effect and expands the range of action. This indicates that the peak of the van der Waals effect shifts to the right, ultimately increasing the number of combined SO42− and Cl− ions.
- (2)
- Prior to Al substitution, the coordination number of the calcium ions was estimated to be approximately 4. Conversely, after Al substitution, the coordination number of Ca2+ ion increased to approximately 7. This phenomenon can be attributed to the increased adsorption of Ca2+ ions onto the surface of the C-A-S-H in the model system, leading to an increase in the stern potential. The application of the isothermal adsorption formula revealed a 13.26% increase in the calculated number of sulphate ions compared to pre-Al substitution, while the number of chloride ions was observed to be 21.32% higher than its pre-Al substitution state.
- (3)
- Observation of the interfacial transition zone of concrete was conducted before and after the addition of a high alumina phase admixture at the microscopic level. The results revealed that the interfacial transition zone’s microscopic morphology was primarily comprised of clustered C-S-H gel in the absence of the high alumina phase admixture. Conversely, upon the addition of the high alumina phase admixture, there was a transformation in the microscopic morphology of the interfacial transition zone to the flocculent C-A-S-H and C-S-H. These intermingling entities formed a network structure, improving the stability of the structure and the microstructure of the hydration products.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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SiO2 | Li2O | MgO | K2O | CaO | SO3 | Na2O | Fe2O3 | Al2O3 |
---|---|---|---|---|---|---|---|---|
54.39 | 0.77 | 0.24 | 0.14 | 7.98 | 8.30 | 0.26 | 1.40 | 19.83 |
Test Block | Lithium Slag | Cement | Gravel | Sand | Water | Water Reducing Agent |
---|---|---|---|---|---|---|
Type | (%) | (kg/m3) | (kg/m3) | (kg/m3) | (kg/m3) | (kg/m3) |
PC | 0 | 313.2 | 1360 | 657 | 118.1 | 2.6 |
PLiC | 10 | 282 | 1360 | 657 | 118.1 | 2.6 |
PLiC | 20 | 250.8 | 1360 | 657 | 118.1 | 2.6 |
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Zhang, G.; Li, M.; Zhu, Z. Effect of Aluminium Substitution on Physical Adsorption of Chloride and Sulphate Ions in Cement-Based Materials. Materials 2023, 16, 6029. https://doi.org/10.3390/ma16176029
Zhang G, Li M, Zhu Z. Effect of Aluminium Substitution on Physical Adsorption of Chloride and Sulphate Ions in Cement-Based Materials. Materials. 2023; 16(17):6029. https://doi.org/10.3390/ma16176029
Chicago/Turabian StyleZhang, Guangtai, Maoquan Li, and Zheyu Zhu. 2023. "Effect of Aluminium Substitution on Physical Adsorption of Chloride and Sulphate Ions in Cement-Based Materials" Materials 16, no. 17: 6029. https://doi.org/10.3390/ma16176029
APA StyleZhang, G., Li, M., & Zhu, Z. (2023). Effect of Aluminium Substitution on Physical Adsorption of Chloride and Sulphate Ions in Cement-Based Materials. Materials, 16(17), 6029. https://doi.org/10.3390/ma16176029