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Effect of Mineral Aggregates and Chemical Admixtures as Internal Curing Agents on the Mechanical Properties and Durability of High-Performance Concrete

机译:矿物骨料和化学外加剂作为内部固化剂对高性能混凝土力学性能和耐久性的影响

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摘要

In the present work, the effect of mineral aggregates (pumice stone and expanded clay aggregates) and chemical admixtures (superplasticizers and shrinkage reducing additives) as an alternative internal curing technique was investigated, to improve the properties of high-performance concrete. In the fresh and hardened state, concretes with partial replacements of Portland cement (CPC30R and OPC40C) by pulverized fly ash in combination with the addition of mineral aggregates and chemical admixtures were studied. The physical, mechanical, and durability properties in terms of slump, density, porosity, compressive strength, and permeability to chloride ions were respectively determined. The microstructural analysis was carried out by scanning electronic microscopy. The results highlight the effect of the addition of expanded clay aggregate on the internal curing of the concrete, which allowed developing the maximum compressive strength at 28 days (61 MPa). Meanwhile, the replacement of fine aggregate by 20% of pumice stone allowed developing the maximum compressive strength (52 MPa) in an OPC-based concrete at 180 days. The effectiveness of internal curing to develop higher strength is attributed to control in the porosity and a high water release at a later age. Finally, the lowest permeability value at 90 days (945 C) was found by the substitutions of fine aggregate by 20% of pumice stone saturated with shrinkage reducing admixture into pores and OPC40C by 15% of pulverized fly ash. It might be due to impeded diffusion of chloride ions into cement paste in the vicinity of pulverized fly ash, where the pozzolanic reaction has occurred. The proposed internal curing technology can be considered a real alternative to achieve the expected performance of a high-performance concrete since a concrete with a compressive strength range from 45 to 67 MPa, density range from 2130 to 2310 kg/m , and exceptional durability (< 2000 C) was effectively developed.
机译:在目前的工作中,研究了矿物骨料(浮石和膨胀黏土骨料)和化学外加剂(高效减水剂和减缩减缩添加剂)作为替代内部固化技术的效果,以改善高性能混凝土的性能。在新鲜和硬化状态下,研究了用粉状粉煤灰部分替代波特兰水泥(CPC30R和OPC40C),并添加矿物骨料和化学外加剂的混凝土。在坍落度,密度,孔隙率,抗压强度和对氯离子的渗透性方面分别测定了物理,机械和耐久性能。显微结构分析是通过扫描电子显微镜进行的。结果突出显示了添加膨胀粘土骨料对混凝土内部固化的影响,从而使28天(61 MPa)时的最大抗压强度得以提高。同时,用20%的浮石代替细骨料可以使基于OPC的混凝土在180天时达到最大抗压强度(52 MPa)。内部固化产生更高强度的有效性归因于孔隙率的控制和较高年龄时的高水释放。最后,在90天(945 C)时发现了最低的渗透率值,是用20%的饱和收缩的浮石代替细骨料,从而减少了15%的粉煤灰掺入孔中的含量,以及OPC40C。这可能是由于氯离子在粉煤灰附近发生火山灰反应的附近扩散到水泥浆中所致。提议的内部固化技术可以被视为实现高性能混凝土预期性能的真正替代方法,因为混凝土的抗压强度范围为45至67 MPa,密度范围为2130至2310 kg / m,并且具有出色的耐久性( <2000 C)得到有效开发。

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