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Design of inorganic polymer mortar from ferricalsialic and calsialic slags for indoor humidity control

机译:利用铁硅酸钙和硅酸钙渣控制室内湿度的无机聚合物砂浆的设计

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摘要

Amorphous silica and alumina of metakaolin are used to adjust the bulk composition of black (BSS) and white (WSS) steel slag to prepare alkali-activated (AAS) mortars consolidated at room temperature. The mix-design also includes also the addition of semi-crystalline matrix of river sand to the metakaolin/steel powders. The results showed that high strength of the steel slag/metakaolin mortars can be achieved with the geopolymerization process which was particularly affected by the metallic iron present into the steel slag. The corrosion of the Fe particles was found to be responsible for porosity in the range between 0.1 and 10 μm. This class of porosity dominated (~31 vol %) the pore network of B compared to W samples (~16 vol %). However, W series remained with the higher cumulative pore volume (0.18 mL/g) compared to B series, with 0.12 mL/g. The maximum flexural strength was 6.89 and 8.51 MPa for the W and B series, respectively. The fracture surface ESEM observations of AAS showed large grains covered with the matrix assuming the good adhesion bonds between the gel-like geopolymer structure mixed with alkali activated steel slag and the residual unreacted portion. The correlation between the metallic iron/Fe oxides content, the pore network development, the strength and microstructure suggested the steel slag's significant action into the strengthening mechanism of consolidated products. These products also showed an interesting adsorption/desorption behavior that suggested their use as coating material to maintain the stability of the indoor relative humidity.
机译:偏高岭土的无定形二氧化硅和氧化铝用于调节黑色(BSS)和白色(WSS)钢渣的总体组成,以制备在室温下固结的碱活化(AAS)砂浆。混合设计还包括在偏高岭土/钢粉中添加河砂的半结晶基质。结果表明,钢渣/偏高岭土砂浆的高强度可以通过地聚合过程实现,而该过程特别受钢渣中存在的金属铁的影响。发现Fe颗粒的腐蚀导致孔隙率在0.1至10μm之间。与W样品(〜16 vol%)相比,此类孔隙度占B孔网络的主导(〜31 vol%)。但是,与B系列(0.12 mL / g)相比,W系列具有更高的累积孔体积(0.18 mL / g)。 W系列和B系列的最大抗弯强度分别为6.89和8.51 MPa。 AAS的断裂表面ESEM观察表明,假定与碱活化钢渣混合的凝胶状地质聚合物结构与残留的未反应部分之间具有良好的粘合力,则大颗粒被基体覆盖。金属铁/铁氧化物含量,孔网络发展,强度和微观结构之间的相关性表明钢渣对固结强化机制的重要作用。这些产品还表现出有趣的吸附/解吸行为,表明它们可用作保持室内相对湿度稳定性的涂料。

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