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Influence of supplementary cementitious materials on the performance and environmental impacts of reactive magnesia cement concrete

机译:辅助胶凝材料对活性氧化镁水泥混凝土性能和环境影响的影响

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This paper investigated the performance and environmental impacts of reactive magnesia cement (RMC)-based formulations containing pulverized fuel ash (PFA) and ground granulated blast furnace slag (GGBS). Concrete samples, whose binder component was composed of RMC with 0-50% PFA and GGBS replacement were subjected to carbonation curing for up to 28 days. The performance of each sample was analyzed and compared to corresponding Portland cement (PC)-based samples via porosity, water sorptivity, compressive strength and thermal conductivity measurements. The performance results were supported with the assessment of the environmental impact of each sample throughout their production and utilization phases. Samples in which 50% of the binder component was replaced by PFA indicated the highest strength development, reaching strengths as high as 60 MPa at 28 days, which were 33% higher than those of the corresponding RMC control sample. The advantageous strength gain demonstrated by RMC-PFA samples was associated with a reduction in sample porosity due to the filler effect of PFA as well as the formation of strength providing phases through the hydration and carbonation reactions. The use of both PFA and GGBS decreased the environmental impacts of RMC formulations, which was reflected as lower CO2 emissions, as well as reduced damage on human health and eco-system quality when compared to RMC and PC samples. The environmental efficiency calculations involving a combination of the net CO2 emissions and mechanical performance of each sample revealed the benefits of supplementary cementitious materials within RMC formulations. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文研究了基于活性氧化镁水泥(RMC)的粉煤灰(PFA)和高炉矿渣粉(GGBS)的配方对性能和环境的影响。由粘合剂含量为0-50%的RMC和​​GGBS代替的RMC组成的混凝土样品经过碳化固化长达28天。分析了每个样品的性能,并通过孔隙率,吸水率,抗压强度和导热系数测量,将其与相应的基于波特兰水泥(PC)的样品进行了比较。通过评估每个样品在其生产和使用阶段对环境的影响,为性能结果提供了支持。用PFA代替50%粘合剂组分的样品显示出最高的强度发展,在28天时达到高达60 MPa的强度,比相应的RMC对照样品高33%。 RMC-PFA样品显示出的有利强度提高与PFA的填充效应以及通过水合和碳酸化反应形成提供相的强度的形成而降低了样品的孔隙率有关。与RMC和PC样品相比,PFA和GGBS的使用均降低了RMC配方对环境的影响,这反映为更低的CO2排放量,以及减少了对人体健康和生态系统质量的损害。结合每个样本的净二氧化碳排放量和机械性能进行的环境效率计算表明,RMC配方中补充胶结材料的好处。 (C)2017 Elsevier Ltd.保留所有权利。

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