Review on the Application of Supplementary Cementitious Materials in Self-Compacting Concrete
Abstract
:1. Introduction
2. Mixture Design of SCC
3. Material Characteristics
3.1. Characteristics of SCMs
3.2. Hydration Mechanisms
4. Influence of SCMs in SCC
4.1. Microstructure
4.2. Fresh Properties
4.3. Strength Properties
4.4. Durability Properties
5. Conclusions
- SCC has a high content of powder material, and it is feasible to reduce the quantity of cement and thus decrease the production costs by incorporating SCMs. FA, SF, GGBS, and LP are the most frequently utilized SCMs in SCC. FA contains a high proportion of aluminum phase and predominantly spherical particles; SF primarily contains SiO2 and has a high specific surface area. GBFS mainly contains SiO2 and CaO; LP chiefly consists of CaCO3, and both of them show obvious irregular and angular shapes due to mechanical grinding. The hydration mechanisms of these SCMs in SCC include pozzolanic reaction, alkaline activation, and adsorption effect. Moreover, the filling effect and dilution effect of some SCMs on the paste will contribute to reducing the porosity and limiting the temperature rise of concrete, respectively.
- The spherical particles of FA improve the fluidity of the freshly mixed paste, whereas SF increases the water demand and reduces fluidity due to its large specific surface area. The effect of GBFS on the fresh properties of SCC is related to the fineness and blending amount. The impact of LP is determined by the fineness, and LP will typically increase water consumption. Furthermore, superplasticizers are often added into SCC to increase the fresh properties, and superplasticizers might retard the early hydration and result in a delayed setting.
- The low pozzolanic reactivity of FA typically decreases the strength properties, particularly the early strength; the active SF usually enhances strength. The effect of GBFS on strength is dependent on the water–cement ratio and admixture amount, and it usually reduces the early strength while having little effect on post-strength. The adsorption effect of CaCO3 on Ca2+ in LP will accelerate the hydration of cement and improve the development of the early strength.
- The pozzolanic reaction and filling effect of SCMs reduce the porosity of the hardened paste, resulting in a denser microstructure in the interfacial transition zone, thus increasing the durability of SCC. Furthermore, because of the high aluminum phase composition, FA and GBFS are typically capable of improving the resistance to chloride ion penetration and sulfate attack of SCC.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Pang, L.; Liu, Z.; Wang, D.; An, M. Review on the Application of Supplementary Cementitious Materials in Self-Compacting Concrete. Crystals 2022, 12, 180. https://doi.org/10.3390/cryst12020180
Pang L, Liu Z, Wang D, An M. Review on the Application of Supplementary Cementitious Materials in Self-Compacting Concrete. Crystals. 2022; 12(2):180. https://doi.org/10.3390/cryst12020180
Chicago/Turabian StylePang, Lang, Zhenguo Liu, Dengquan Wang, and Mingzhe An. 2022. "Review on the Application of Supplementary Cementitious Materials in Self-Compacting Concrete" Crystals 12, no. 2: 180. https://doi.org/10.3390/cryst12020180
APA StylePang, L., Liu, Z., Wang, D., & An, M. (2022). Review on the Application of Supplementary Cementitious Materials in Self-Compacting Concrete. Crystals, 12(2), 180. https://doi.org/10.3390/cryst12020180