Utilization of thermal-activated copper tailings as a partial substitute for cement: a promising approach

Authors

DOI:

https://doi.org/10.3989/mc.2025.383324

Keywords:

Copper tailings, Thermal activation, CaO, Hydration, Compressive strength

Abstract


This study proposed thermal activation to activate copper tailings and investigated the effects of the temperature of thermal activation on the hydration properties, pore structure, and compressive strength of thermally activated CT (TCT) pastes. The results indicate that thermal activation slightly refines the particle size of CT and induces the decomposition of CaCO3, leading to the formation of highly reactive CaO. Compared to raw CT, the addition of calcined CT in the pastes resulted in a greater quantity of early hydration products, with increases of 0.34%—5.6% in C-S-H and ettringite, and approximately 0.9%—15.7% in Ca(OH)2. These changes facilitated a reduction in paste porosity, resulting in a more densified structure. Consequently, the compressive strength of TCT pastes increased by 6.8%—20.6% at 3d, by 5%—16.9% at 7d, and by 1.2%—13.5% at 28d. Therefore, the proposed thermal activation CT can be a promising cement substitution.

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References

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Published

2025-09-30

How to Cite

Wang, L., Fang, H., Chen, P. ., Zong, Z., Qian, P., & Wang, X. (2025). Utilization of thermal-activated copper tailings as a partial substitute for cement: a promising approach. Materiales De Construcción, 75(359), e384. https://doi.org/10.3989/mc.2025.383324

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