Coordinating early-age strength, shrinkage resistance, and interfacial bonding in alkali-activated slag repair mortar using NaCl and light-burned MgO

Alkali-activated slag (AAS) repair mortars provide high early strength, but shrinkage can impair bonding. This study investigated combined NaCl and light-burned MgO additions using a 4×4 dosage matrix. With 4 wt% NaCl and 5 wt% MgO, 1-day compressive and flexural strengths reached 21.68 and 6.58 MPa, increasing by 92.2% and 72.3% over unmodified AAS. At 28 days, drying and post-demolding autogenous shrinkage decreased by 60.1% and 41.3%, respectively. Tensile bond strength at 48 h increased from 0.54 to 2.31 MPa. NaCl favored Friedel’s salt formation, while MgO contributed to Mg(OH) 2 formation. Measured porosity decreased from 21.29% to 12.19%. These microstructural observations were consistent with improved mechanical performance and shrinkage resistance. On a 1 t mortar-mixture basis, production-stage emissions within the binder/modifier assessment boundary were 65.5% lower than those of the Portland cement reference. These findings support the potential of this mixture for non-reinforced concrete repair applications in corrosion-insensitive service environments.

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Journal
Developments in the Built Environment
Published
2026-09-29
DOI
https://doi.org/10.1016/j.dibe.2026.101063
Primary Topic
Concrete and Cement Materials Research
Type
article
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article

Coordinating early-age strength, shrinkage resistance, and interfacial bonding in alkali-activated slag repair mortar using NaCl and light-burned MgO

Bin Wang, Haotian Xu, Xia Meng, Wei Feng He et al.
Developments in the Built Environment
Concrete and Cement Materials Research
article

Coordinating early-age strength, shrinkage resistance, and interfacial bonding in alkali-activated slag repair mortar using NaCl and light-burned MgO

Bin Wang, Haotian Xu, Xia Meng, Wei Feng He, Qi-shun Liang
article en

Abstract

Alkali-activated slag (AAS) repair mortars provide high early strength, but shrinkage can impair bonding. This study investigated combined NaCl and light-burned MgO additions using a 4×4 dosage matrix. With 4 wt% NaCl and 5 wt% MgO, 1-day compressive and flexural strengths reached 21.68 and 6.58 MPa, increasing by 92.2% and 72.3% over unmodified AAS. At 28 days, drying and post-demolding autogenous shrinkage decreased by 60.1% and 41.3%, respectively. Tensile bond strength at 48 h increased from 0.54 to 2.31 MPa. NaCl favored Friedel’s salt formation, while MgO contributed to Mg(OH) 2 formation. Measured porosity decreased from 21.29% to 12.19%. These microstructural observations were consistent with improved mechanical performance and shrinkage resistance. On a 1 t mortar-mixture basis, production-stage emissions within the binder/modifier assessment boundary were 65.5% lower than those of the Portland cement reference. These findings support the potential of this mixture for non-reinforced concrete repair applications in corrosion-insensitive service environments.

Developments in the Built EnvironmentVol. 28
Beijing University of Civil Engineering and Architecture (CN), Tsinghua University (CN)
Openalex Percentile: Top 18%
Concrete and Cement Materials Research
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Coordinating early-age strength, shrinkage resistance, and interfacial bonding in alkali-activated slag repair mortar using NaCl and light-burned MgO — Bin Wang, Haotian Xu, et al. · Developments in the Built Environment (2026) | TGRS Research Map | TGRS