TY - JOUR
T1 - Interfacial deterioration mechanisms in polymer repair mortar and concrete under salt freeze thaw cycles
AU - Lin, Bozhong
AU - Fang, Hu
AU - Cao, Xingyu
AU - Zhang, Jiwen
AU - Yao, Yao
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/6/1
Y1 - 2026/6/1
N2 - The durability of the interface between polymer-modified mortar and old concrete remains a critical concern, particularly under salt freeze-thaw cycles. This study investigates the interfacial deterioration behavior of ethylene vinyl acetate (EVA) repair mortar and old concrete subjected to freeze-thaw cycles in 3.5% and 7.0% NaCl solutions. The evolution of interfacial bonding strength, ultrasonic pulse velocity (UPV), failure mode, microhardness, pore structure and chloride transport was systematically evaluated. The results indicate that salt freeze-thaw cycling leads to progressive interfacial degradation, characterized by reduced bond strength and UPV, along with a transition in failure mode from cohesive substrate failure to adhesive interfacial debonding. The 4% EVA modified repair mortar exhibits the best overall performance, effectively enhancing interfacial bonding and retarding freeze-thaw deterioration, whereas excessive EVA addition reduces the interfacial bonding strength. Microstructural analyses indicate that freeze-thaw damage is governed by pore structure coarsening in the interface, while appropriate EVA incorporation effectively suppresses crack development and stabilizes the pore structure. A strong correlation between UPV and interfacial bonding strength further indicates that UPV can reflect the deterioration trend of the interface. Moreover, specimens exposed to 7.0% NaCl exhibit less severe deterioration than those in 3.5% NaCl, which may be associated with reduced ice-induced damage resulting from freezing point depression and changes in pore-water freezing behavior. These findings enhance the understanding of interfacial deterioration mechanisms and support the durability design of polymer repair mortar under salt freeze-thaw conditions.
AB - The durability of the interface between polymer-modified mortar and old concrete remains a critical concern, particularly under salt freeze-thaw cycles. This study investigates the interfacial deterioration behavior of ethylene vinyl acetate (EVA) repair mortar and old concrete subjected to freeze-thaw cycles in 3.5% and 7.0% NaCl solutions. The evolution of interfacial bonding strength, ultrasonic pulse velocity (UPV), failure mode, microhardness, pore structure and chloride transport was systematically evaluated. The results indicate that salt freeze-thaw cycling leads to progressive interfacial degradation, characterized by reduced bond strength and UPV, along with a transition in failure mode from cohesive substrate failure to adhesive interfacial debonding. The 4% EVA modified repair mortar exhibits the best overall performance, effectively enhancing interfacial bonding and retarding freeze-thaw deterioration, whereas excessive EVA addition reduces the interfacial bonding strength. Microstructural analyses indicate that freeze-thaw damage is governed by pore structure coarsening in the interface, while appropriate EVA incorporation effectively suppresses crack development and stabilizes the pore structure. A strong correlation between UPV and interfacial bonding strength further indicates that UPV can reflect the deterioration trend of the interface. Moreover, specimens exposed to 7.0% NaCl exhibit less severe deterioration than those in 3.5% NaCl, which may be associated with reduced ice-induced damage resulting from freezing point depression and changes in pore-water freezing behavior. These findings enhance the understanding of interfacial deterioration mechanisms and support the durability design of polymer repair mortar under salt freeze-thaw conditions.
KW - EVA-modified mortar
KW - Interfacial deterioration
KW - Interfacial transition zone
KW - Pore structure
KW - Salt freeze-thaw
UR - https://www.scopus.com/pages/publications/105039316626
U2 - 10.1016/j.jobe.2026.116351
DO - 10.1016/j.jobe.2026.116351
M3 - 文章
AN - SCOPUS:105039316626
SN - 2352-7102
VL - 127
JO - Journal of Building Engineering
JF - Journal of Building Engineering
M1 - 116351
ER -