Research and Application of Materials Science

Performance of Low-Carbon Mortar Prepared with CO₂-Carbonated Carbide Slag as a Partial Cement Substitute

LIUChao (Xi'an University of Architecture and Technology), YANGChao (Xi'an University of Architecture and Technology), ZHUChao (Xi'an University of Architecture and Technology)

Abstract


To explore the feasibility of using CO₂-carbonated carbide slag in low-carbon cementitious materials, this study investigated the basic properties of raw carbide slag and CO₂-carbonated carbide slag, and further used CO₂-carbonated carbide slag as a partial cement substitute to prepare low-carbon mortar. Five replacement ratios of CO₂-carbonated carbide slag, namely 0%, 5%, 10%, 15% and 20%, were designed to evaluate their effects on mortar flowability, compressive strength, water absorption, bulk density, leaching pH and Ca²⁺ release behavior. The results showed that CO₂ carbonation increased the CaCO₃ content of carbide slag from 4.0 wt.% to 41.6 wt.%, decreased the Ca(OH)₂ content from 92.0 wt.% to 48.2 wt.%, and reduced the pH from 12.60 to 10.55, indicating that carbonation can reduce alkalinity and form carbonate-rich products. When the replacement ratios of CO₂-carbonated carbide slag were 5% and 10%, the 28-day compressive strengths of mortar were 50.2 MPa and 49.6 MPa, respectively, slightly higher than that of the control group (48.5 MPa). When the replacement ratio increased to 20%, the 28-day compressive strength decreased to 41.3 MPa. The water absorption and bulk density results indicated that 5%-10% replacement was beneficial to improving mortar compactness, whereas excessive replacement weakened the dense structure. Leaching tests showed that the leachate pH and Ca²⁺ concentration slightly decreased with increasing replacement ratio, suggesting that CO₂-carbonated carbide slag did not increase the risk of alkaline release. Overall, CO₂-carbonated carbide slag can be used as a partial cement substitute in low-carbon mortar, and a replacement ratio of 5%-10% is considered suitable.


Keywords


carbide slag; CO₂ carbonation; low-carbon mortar; cement replacement; compressive strength; environmental compatibility

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DOI: https://doi.org/10.33142/rams.v8i1.20144

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