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Improvement of mechanical strength of alkali-activated materials using micro low-alumina mine tailings

机译:用微量低氧化铝矿尾矿改善碱活性材料机械强度

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Low-alumina mine tailings (MTs) have shown the possibility of being a precursor in the production of alkali-activated materials (AAMs). The effects of the addition of sub-micron MTs (10 wt%) with the average size of 400 nm to improve the performance of AAMTs with alkali activator (10, 15, 20, and 30 wt% sodium silicate) were investigated by using X-ray diffractometry (XRD), Attenuated total reflection-Fourier-transform infrared spectroscopy (ATR-FTIR), scanning electron microscopy (SEM), and nitrogen adsorption technique (BET). The mechanical properties of the materials were also analyzed. The results indicate that the addition of sub-micron MTs to AAMTs plays an important role in mineral compositions and enhances the mechanical strength performance in comparison to plain AAMTs, especially after just 7 days of aging. This result is attributed to the different microstructure between AAMTs and submicron MTs. BET results showed that the addition of sub-micron MTs reduces the total porosity of alkali-activated products and changes the pore structure. The pores of AAMTs were refined by the filling effects of sub-micron particles and the enhancement of the hydration process due to the nucleation effect of those sub-micron particles. This could be a significant reason for the increase in early age mechanical strength. This work introduces a novel approach to improve the performance of tailings-based alkali-activated materials using nano-sized precursors. (C) 2020 Elsevier Ltd. All rights reserved.
机译:低氧化铝矿尾矿(MTS)表明了在生产碱活化材料(AAM)的前体的可能性。通过使用X研究了用碱活化剂(10,15,20和30wt%硅酸钠的平均尺寸为400nm的亚微米MTS(10wt%)的效果,以改善碱活化剂(10,15,20和30wt%硅酸钠) -Ray衍射测量(XRD),衰减总反射 - 傅里叶变换红外光谱(ATR-FTIR),扫描电子显微镜(SEM)和氮吸附技术(BET)。还分析了材料的机械性能。结果表明,向Aamts中加入亚微米MTS在矿物组合物中起重要作用,与普通罐相比,提高了机械强度的性能,特别是在老化的7天后。该结果归因于Aamts和亚微米MTS之间的不同微观结构。 BET结果表明,添加亚微米MTS降低了碱活化产物的总孔隙率,并改变了孔结构。由于这些亚微米颗粒的成核效应,通过亚微米颗粒的填充作用和水合过程的增强来改进Aamts的孔。这可能是早期机械强度增加的重要原因。本作品介绍了一种新的方法来改善纳米尺寸前体的尾矿碱活性材料的性能。 (c)2020 elestvier有限公司保留所有权利。

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