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Properties of Alkali-Activated Slag Paste Using New Colloidal Nano-Silica Mixing Method

机译:采用新型胶体纳米二氧化硅混合法的碱活性炉渣浆料的性质

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Previous studies of alkali-activated slag cement (AASC) using nano-silica have mentioned mostly powdered nano-silica and binder weight replacement methods, which have a rapid decrease in fluidity, a short setting time and a low nano-silica replacement rate ( 5%). In this study, colloidal nano-silica (CNS) was used and the mixing-water weight substitution method was applied. The substitution method was newly applied to improve the dispersibility of nano-silica and to increase the substitution rate. In the experiment, the CNS was replaced by 0, 10, 20, 30, 40, and 50% of the mixing-water weight. As a result, as the substitution rate of CNS increased, the fluidity decreased, and the setting time decreased. High compressive strength values and increased rates were also observed, and the diameter and volume of pores decreased rapidly. In particular, the increase of CNS replacement rate had the greatest effect on decrease of medium capillary pores (50–10 nm) and increase of gel pores ( 10 nm). The new displacement method was able to replace up to 50% of the mixing water. As shown in the experimental results, despite the high substitution rate of 50%, the minimum fluidity of the mixture was secured, and a high-strength and compact matrix could be formed.
机译:使用纳米二氧化硅的碱活性炉渣水泥(AASC)的先前研究主要是粉末化的纳米二氧化硅和粘合剂重量替代方法,其流动性快速降低,短设定时间和低纳米二氧化硅更换率(< 5%)。在该研究中,使用胶体纳米二氧化硅(CNS)并施加混合水重量取代方法。新应用替代方法以改善纳米二氧化硅的分散性并增加替代率。在实验中,CNS被0,10,20,30,40和50%的混合水重替换。结果,随着CNS的替代率增加,流动性降低,并且设定时间减少。还观察到高抗压强度值和增加的速率,并且孔的直径和体积迅速下降。特别是,CNS替换率的增加对中毛细管孔(50-10nm)的降低以及凝胶孔的增加(<10nm)的增加。新的位移方法能够更换多达50%的混合水。如实验结果所示,尽管替换了50%的高取代率,但确保了混合物的最小流动性,并且可以形成高强度和紧凑的基质。

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