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High-performance alkali-activated composites containing an iron-ore mine tailing as aggregate

机译:含矿山尾矿的骨料的高性能碱活化复合材料

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High-performance cementitious composites have been developed to overcome the brittleness of mortars and concretes, thus improving the deformation and toughness of these materials under flexion and tension. Poli Vinyl Alcohol (PVA) fibres are employed in the production of such “Engineered Cementitious Composites” - ECC; the PVA fibres have a loadcarrying capacity after the first crack (matrix failure), which changes the mechanical behaviour of the composites from brittle to ductile and significantly increases the ultimate strength. This deflection or strain-hardening behaviour is accompanied by a multiple cracking of the composites, which results from the design of a proper formulation, with correct amount of PVA fibres (usually 2% vol. fraction) and employment of a very fine sand (passing 0.6 mm). Recent developments in the area of ECC comprise the replacement of Portland cement (PC) matrices with alkali-activated materials (AAM). The idea is to produce composites with similar performance but with improved chemical durability and lower environmental impact. A more sustainable solution would consider the replacement of the fine sand with mine tailings in the production of ECC-AAM. Some tailings from the iron-ore mining activities in Brazil are significantly finer than those aggregates used for PC mortars and concretes; therefore, they cannot be employed in traditional PC-based materials. Nevertheless, those fine materials could replace the fine natural aggregate used in the production of ECC. This paper investigates the replacement of a natural quartz sand with an iron-rich mine tailing in PVA-reinforced AAM. Four composites were studied from a combination of two different matrices and 2 different aggregates. The matrices were obtained from the alkaline activation of metakaolin (MK) with sodium silicate (Na_(2)SiO_(3)) and sodium hydroxide (NaOH); silica fume (SF) was used to adjust their composition: SiO_(2)/ Al_(2)O_(3)molar ratio equal to 3.0 or 3.8. The aggregates used were either natural quartz (passing 0.6 mm) or tailings produced during the mining activities of iron ore in the state of Minas Gerais, Brazil. The mine tailing studied is much finer than the natural sand (passing 0.3 mm) but it was used as received in the production of ECC-AAM. The aggregate to binder ratio was kept constant (equal to 1.0 in mass) irrespective of the type of aggregate. All mortars were reinforced with 2% vol. of PVA fibres; extra water was added to the mixes to maintain the same consistency for the composites. The mechanical properties investigated are compressive strength, flexural strength and toughness. The apparent dry density of the mortars was also assessed. The preliminary results presented in this paper indicate that iron-rich tailings may be effectively used in the production of ECC-AAM; however, durability tests are still necessary.
机译:为了克服砂浆和混凝土的脆性,因此开发了高性能水泥复合材料,从而改善了这些材料在弯曲和拉伸下的变形和韧性。聚乙烯醇(PVA)纤维用于生产这种“工程水泥基复合材料”-ECC; PVA纤维在第一次开裂(基体破坏)后具有承重能力,将复合材料的机械性能从脆性变为韧性,并显着提高了极限强度。这种挠曲或应变硬化行为伴随着复合材料的多次开裂,这是由于设计了正确的配方,使用了正确数量的PVA纤维(通常为2%体积分数)和使用了非常细的砂子(通过0.6毫米)。 ECC领域的最新发展包括用碱活化材料(AAM)代替波特兰水泥(PC)基质。想法是生产具有类似性能但具有提高的化学耐久性和较低的环境影响的复合材料。更具可持续性的解决方案将考虑在ECC-AAM生产中用矿山尾矿替代细砂。巴西铁矿石开采活动产生的一些尾矿要比PC砂浆和混凝土所用的骨料细得多。因此,它们不能用于基于PC的传统材料中。但是,这些细料可以代替ECC生产中使用的细天然骨料。本文研究了在PVA增强AAM中用富含铁的尾矿替代天然石英砂的方法。从两种不同的基质和2种不同的聚集体的组合研究了四种复合材料。该基质是通过偏高岭土(MK)用硅酸钠(Na_(2)SiO_(3))和氢氧化钠(NaOH)的碱活化而获得的;硅粉(SF)用于调节其组成:SiO_(2)/ Al_(2)O_(3)摩尔比等于3.0或3.8。在巴西米纳斯吉拉斯州使用的骨料要么是天然石英(通过0.6毫米),要么是在铁矿石开采活动中产生的尾矿。所研究的矿山尾矿比天然砂细得多(超过0.3毫米),但已用于ECC-AAM生产中。无论骨料的类型如何,骨料与粘结剂的比率均保持恒定(等于1.0质量)。所有灰浆均用2%vol增强。聚乙烯醇纤维将额外的水添加到混合物中,以保持复合材料的相同稠度。研究的机械性能为抗压强度,抗弯强度和韧性。还评估了砂浆的表观干密度。本文提出的初步结果表明,富铁尾矿可有效地用于生产ECC-AAM。但是,仍然需要进行耐久性测试。

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