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Carbon dioxide sequestration of concrete slurry waste and its valorisation in construction products

机译:二氧化碳固存混凝土浆废料及其在建筑产品中的价值评估

摘要

This paper aimed to investigate the CO2 sequestration potential of concrete slurry waste (CSW) and its valorisation with fine recycled concrete aggregates (FRCAs) for the production of sustainable construction products by direct gas-solid mineral carbonation. Concrete slurry waste (CSW) with rich calcium and silicate phases is a by-product waste generated from concrete production in concrete batching plants. The CO2 sequestration extent achievable by CSW, FRCAs and their mixture, as well as the mechanical and durability properties of the mixture were evaluated in this study. It was found that the gas-solid carbonation mechanism of CSW and its mixture followed unreacted core model where a fast kinetically controlled process initially took place, then followed by a slow diffusion-controlled reaction process. Over 75% of the experimental CO2 uptake by CSW, FRCAs and their mixture occurred in less than 3-h carbonation and the CSW was able to sequestrate 110 g CO2 per kg dry mass after 7 days. Subjected to mineral carbonation, the mixture prepared with CSW and FRCAs quickly gained strength in a few hours and suffered lower drying shrinkage. Its strength development followed a power function of CO2 uptake, which was attributed to the gradual reduction in porosity with mineral carbonation. Furthermore, lifecycle assessment indicated that the production of the studied mixture as partition wall blocks was carbon neutral and environmentally sustainable due to CO2 capture and storage in concrete wastes.
机译:本文旨在研究混凝土浆废料(CSW)的CO2封存潜力,以及利用精细的再生混凝土骨料(FRCA)进行价衡的方法,以通过直接气固性矿物碳酸法生产可持续的建筑产品。具有丰富的钙和硅酸盐相的混凝土浆废料(CSW)是混凝土配料厂中混凝土生产产生的副产品废物。在这项研究中,评估了CSW,FRCA及其混合物可实现的二氧化碳封存程度,以及混合物的机械和耐久性能。发现CSW及其混合物的气固碳化机理遵循未反应的核模型,该模型最初发生了快速的动力学控制过程,然后是缓慢的扩散控制的反应过程。 CSW,FRCA及其混合物吸收的实验性CO2超过75%的吸收发生在少于3小时的碳酸化过程中,并且CSW在7天后能够封存每千克干重110 g CO2。经过矿物碳酸化处理后,使用CSW和FRCA制备的混合物在数小时内迅速获得了强度,并且干燥收缩率降低了。它的强度发展遵循吸收二氧化碳的幂函数,这归因于矿物碳酸化导致孔隙度逐渐降低。此外,生命周期评估表明,由于将CO2捕获并存储在混凝土废料中,因此,所研究的混合物作为隔墙砖的生产是碳中性的,并且对环境可持续。

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