Internal curing mechanisms of recycled fine aggregate with different pre-wetting degrees in UHPC: Insights into water migration and hydration

收缩率 材料科学 热重分析 固化(化学) 复合材料 多孔性 抗压强度 抗弯强度 扫描电子显微镜 等温过程 复合数 水分 保水性 刚度 含水量 骨料(复合) 热稳定性
作者
Cong Wang,Yifeng Ling,Yuxiang Tan,Weizhuo Shi,X W Li,Shikui Jia,Shikui Jia,Shuailong Jia,Shuailong Jia,X W Wang
出处
期刊:Construction and Building Materials [Elsevier BV]
卷期号:539: 147524-147524
标识
DOI:10.1016/j.conbuildmat.2026.147524
摘要

Severe self-desiccation makes ultra-high performance concrete (UHPC) susceptible to early autogenous shrinkage and cracking. Recycled fine aggregate (RFA) can serve as an internal water reservoir, but how its pre-wetting degree regulates water migration, hydration, and dimensional stability in coarse-aggregate UHPC remains insufficiently understood. this study systematically evaluated the effects of RFA with different pre-wetting degrees (0%-100%) on the mechanical properties, shrinkage behavior, water migration, hydration, and microstructural evolution of UHPC. The underlying mechanisms were examined using ¹H low-field nuclear magnetic resonance, isothermal calorimetry coupled with the Krstulović-Dabić model, scanning electron microscopy, thermogravimetric analysis, and mercury intrusion porosimetry. The results showed that increasing the RFA pre-wetting degree reduced flowability but progressively enhanced the internal curing. Compared with UHPC containing non-pre-wetted RFA, fully pre-wetted RFA increased the compressive and flexural strengths by up to 12.73% and 13.54%, respectively. It also reduced the 56-d autogenous shrinkage by 35.96% relative to the control mixture, although the incorporation of RFA increased drying shrinkage because of its lower stiffness and higher porosity. The fully pre-wetted RFA initiated active water release at approximately 6 h and reached the maximum release rate at 8 h, thereby sustaining water availability, promoting hydration, refining the pore structure, and improving matrix and interfacial integrity. These findings contribute to a better understanding of the feasibility of converting RFA into a valuable internal curing material, offering a sustainable and efficient solution for mitigating autogenous shrinkage in UHPC.
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