纳米二氧化硅碳化与水化协同效应改性充填体早期强度研究

A study on the synergistic effects of carbonation and hydration in the modification of filler particles to enhance early strength

  • 摘要: 充填体的力学性能对推动矿山可持续开采高效应用发挥关键作用.为有效提高充填体的力学性能,以纳米二氧化硅增强尾砂胶结充填体为研究对象,研究传统固体粉末与前驱体溶液对充填体早期强度、微观结构、碳化和水化作用的影响.研究结果显示,充填体的单轴抗压强度均随着两者纳米二氧化硅掺量的增加呈先上升后下降的趋势.相比最佳掺量(4%)下的纳米二氧化硅粉末改性组,掺入最佳掺量(6%)的纳米二氧化硅前驱体溶液对充填体早期强度的提升更为显著,微观结构更为致密稳定.这归因于纳米二氧化硅前驱体溶液不仅能够充分发挥纳米二氧化硅特有的火山灰、填充和成核效应,并且能够有效发挥碳化与水化协同效应,加速水泥水化反应,促进水化进程发展,从而生成大量的碳化产物和水化产物以填充充填体内部有害孔隙,形成更加有利于早期强度提高的致密化结构.而纳米二氧化硅粉末易团聚的性质致使水化产物分布不均,降低充填体基质密度,限制力学性能的提升.这一结果表明,适量的纳米二氧化硅前驱体溶液是提升充填体力学性能的潜力外加剂,为矿山充填纳米二氧化硅的合理应用提供理论依据和实验支持.

     

    Abstract: The mechanical properties of backfill materials play a crucial role in promoting the efficient application of sustainable mining practices. To effectively enhance the mechanical properties of backfill materials, this study focuses on nano-silica-reinforced tailings cemented backfill. It investigates the effects of traditional solid powders and precursor solutions on the early-stage strength, microstructure, carbonation and hydration of the backfill. The results indicate that the uniaxial compressive strength of the backfill exhibits a trend of initially increasing and then decreasing with the addition of both types of nanosilica. Under the same curing period, compared to the nanosilica powder-modified backfill group at the optimal dosage (4%), the addition of nanosilica precursor solution at the optimal dosage (6%) resulted in a more significant improvement in the early strength of the backfill. Specifically, compared with the blank control group, the maximum compressive strength of the nano-silica powder-modified fillers increased by 27.68% and 19.43% after 3 and 7 days of curing, respectively, whilst that of the nano-silica precursor solution-modified fillers increased by 35.02% and 29.48% after 3 and 7 days of curing, respectively. Combining observations from scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR) and thermogravimetric analysis (TG-DTG) to examine the effects of nanosilica powder and precursor solution on the microstructure of the fillers at different curing ages, it was found that the microstructure of the nanosilica precursor solution-modified filler group was denser and more stable. Subsequent carbonation and cement hydration heat tests revealed that, as one of the raw materials in the nanosilica precursor solution is CO2, this group absorbed a certain amount of CO2 and reacted with Ca2+ within the filler to form a large amount of carbonation products. Furthermore, the extent of the cement hydration reaction was more intense than in the group modified with nano-silica powder. Within 72 hours, the maximum heat of hydration NS(s) and NS(aq) reached 47.76 J·g-1 and 55.70 J·g?1 respectively, representing increases of 3.60% and 16.62% compared to the blank control group; The maximum heat fluxes for the NS(s) and NS(aq) groups reached 0.19 mW·g-1 and 0.40 mW·g-1 respectively, whilst the maximum heat flux value for the blank control group was only 0.18 mW·g-1. This is attributed to the fact that the nano-silica precursor solution not only fully exploits the unique pozzolanic, filling and nucleation effects of nano-silica, but also effectively harnesses the synergistic effects of carbonation and hydration. This accelerates the cement hydration reaction and promotes the progression of the hydration process, thereby generating a large amount of carbonation and hydration products to fill the harmful pores within the matrix, forming a denser structure that is more conducive to the improvement of early strength. However, the tendency of nanosilica powder to agglomerate leads to an uneven distribution of hydration products, reducing the matrix density of the backfill and limiting the improvement in mechanical properties. These results indicate that an appropriate amount of nano-silica precursor solution is a promising admixture for enhancing the mechanical properties of backfill, providing both theoretical justification and experimental support for the rational application of nano-silica in mine backfill.

     

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