碳化与二次水化协同促进碱-硫酸盐复合激发体系自愈合行为及机制

Self-healing behavior and mechanism of alkali-sulfate co-activated system through synergistic carbonation and secondary hydration

  • 摘要: 为提升开裂构件自愈合能力与CO2封存,本研究提出了一种基于碳化养护的自愈合方法,并将其应用于碱-硫酸盐碱复合激发砂浆。采用多元固废制备碱-硫酸盐碱复合激发试件,引入裂缝后分别置于标准养护和碳化养护条件下。通过水化热测试和X射线计算机断层扫描技术,研究碳化条件下体系水化动力学特征,并构建自愈合过程中碳化反应与二次水化贡献的量化模型。结果表明,碳化养护显著促进了裂缝区域方解石的析出,增强了裂缝闭合效果,尤其对初始宽度小于300 μm的裂缝修复效果更明显。碳化养护28 d后,试件抗压强度恢复率达到81.5%~94.2%,较标准养护组提高约9.5%。高浓度CO2环境下在早期因竞争性消耗Ca2+而对二次水化产生一定抑制作用,但碳酸盐沉淀与水化产物可协同生成致密的愈合结构。脱硫石膏的引入提高了体系反应活性,并提高了累计放热量。裂缝浅层区域的修复主要受碳化反应控制,随着裂缝深度增加,二次水化逐渐成为主导愈合机制。水合硅酸钙(C−S−H)、钙矾石与方解石的协同作用不仅增强了裂缝充填效果,还改善了裂缝表面的平整性,使裂缝深度愈合率稳定分布于50%~80%。本文揭示了碳化养护条件下碱-硫酸盐复合激发体系中碳化与二次水化协同促进自愈合的机制,为可持续自愈合策略提供理论依据。

     

    Abstract: To enhance the self-healing capability of cracked cementitious materials while promoting CO2 sequestration, this study proposes a carbonation curing-assisted self-healing strategy and applies it to alkali-sulfate co-activated mortar prepared from multiple industrial solid wastes. Pre-cracked specimens were subjected to either standard curing and carbonation curing. Hydration heat test and X-ray computed tomography were used to investigate the hydration kinetics under carbonation conditions. A numerical model was established to quantify the respective contributions of carbonation and secondary hydration during the self-healing process. The results demonstrated that carbonation curing significantly enhanced crack closure by promoting calcite precipitation in cracks, particularly for cracks with initial widths below 300 μm. After 28 d of carbonation curing, the compressive strength recovery ratio of the specimens reached 81.5%−94.2%, representing an approximately 9.5% increase compared with the standard-curing group. Although high CO2 concentration partially inhibited secondary hydration at the early stage by competitively consuming Ca2+, carbonate precipitation and hydrates coexisted to form a dense healing structure. The incorporation of desulfurization gypsum further enhanced both carbonation and hydration reactions, leading to an increased cumulative heat release. Crack healing in the near-surface region was primarily governed by carbonation, where secondary hydration gradually became the dominant healing mechanism with increasing crack depth. The synergistic effects of calcium silicate hydrates (C−S−H), ettringite, and calcite not only promoted crack closure but also improved the surface integrity of the healed cracks, resulting in a relatively stable crack depth healing ratio of 50%−80%. These findings provided new insights and theoretical guidance into sustainable self-healing strategies for alkali-sulfate co-activated materials under carbonation curing conditions.

     

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