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Innovative CO2 Utilization by Carbonation Curing of Lightweight Concrete Made with Portland Limestone Cement

机译:用波特兰石灰石水泥制造轻质混凝土碳化固化的创新二氧化碳利用

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The atmospheric concentration of carbon dioxide gas has immensely increased with escalation in the world’s greenhouse gas (GHG) emissions. Through CO2 recovery, storage and utilization, emission induced global climate changes can be alleviated. The use of Portland limestone cement (PLC) as binder in lightweight concrete can effectively improve net gains in carbon emission reductions by partial replacement of cement with limestone. To further mitigate CO2 discharge, carbonation curing was examined as a potential curing mechanism of lightweight concrete made with PLC. Slab samples were cast and initially cured at 25°C and 50% relative humidity for durations up to 18 hours. Carbonation was then carried out for 4 hours in a sealed chamber at an absolute pressure of 1 bar. The degree of reactivity was assessed by the CO2 uptake based on PLC content and excluding preexisting limestone. The resulting uptake of fresh lightweight concretes without initial curing and after 18 hours of initial curing reached 6% and 18% respectively, corresponding to 13% and 39% reaction efficiency. The effect of carbonation curing on the mechanical properties, microstructure and reaction products of concrete was then investigated. A comparison between the optimum carbonated sample and hydrated reference was performed. While both concretes showed similar early-age compressive strength, late strength of carbonated sample was only comparable if water compensation through surface spray was performed. Hydration products were characterized as well crystalline calcium carbonates with the transformation of carbonate polymorphs into more stable calcite. In the process, PLC could replace OPC in carbonation curing of lightweight concrete while maintaining similar carbon sequestration potential.
机译:在世界温室气体(GHG)排放中,二氧化碳气体的大气浓度随着升级而升级。通过二氧化碳恢复,储存和利用,排放诱导的全球气候变化可以减轻。用轻质混凝土中的粘合剂使用波特兰石灰石水泥(PLC)可以通过部分替换水泥,有效地提高碳排放减排的净增益。为了进一步减轻CO 2放电,将碳酸化固化作为用PLC制造的轻质混凝土的潜在固化机构。将板式样品铸造并最初在25℃和50%相对湿度下固化,持续时间可达18小时。然后在密封腔室中以1巴的绝对压力进行碳酸化4小时。通过基于PLC含量的CO 2吸收来评估反应性程度,并排除预先存在的石灰石。通过初始固化的新鲜轻质混凝土和18小时后初始固化后产生的新鲜轻质混凝土的吸收分别达到6%和18%,对应于13%和39%的反应效率。然后研究了碳酸化固化对混凝土的机械性能,微观结构和反应产物的影响。进行最佳碳酸化样品和水合参考之间的比较。虽然两个混凝土显示出类似的早期抗压强度,但如果通过表面喷雾的水补偿,碳酸化样品的后期强度才具有可比性。作为碳酸盐多晶型物的转化为更稳定的方解石,表征水合产物的特征在于结晶碳酸钙。在该过程中,PLC可以取代轻质混凝土的碳酸化固化的OPC,同时保持类似的碳封存电位。

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