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http://dx.doi.org/10.22807/KJMP.2020.33.4.439

Study on the Mineral Carbonation from Autoclaved Lightweight Concrete (ALC)  

Chae, Soo-Chun (Korea Institute of Geoscience and Mineral Resources)
Lee, Seung-Woo (Korea Institute of Geoscience and Mineral Resources)
Bang, Jun-Hwan (Korea Institute of Geoscience and Mineral Resources)
Song, Kyoung-Sun (Korea Institute of Geoscience and Mineral Resources)
Publication Information
Korean Journal of Mineralogy and Petrology / v.33, no.4, 2020 , pp. 439-450 More about this Journal
Abstract
Global warming caused by the emission of greenhouse gases into the atmosphere is being treated as a major problem for the human life, and mineral carbonation is drawing attention as one of many countermeasures against this situation. In this study, mineral carbonation experiments using autoclaved lightweight concrete (ALC) were performed under various conditions to determine its potential as a carbonation material. ALC can be regarded as a promising material for carbonation because it contains about 27 wt.% of CaO, a major component of mineral carbonation. The CaCO3 content produced as a result of the carbonation of ALC calculated on the assumption that all of the CaO content participates in mineral carbonation is about 40 wt.%. The optimum conditions for the mineral carbonation reaction from ALC are the solid-liquid ratio of 0.01 and the reaction time of 180 minutes when calcite is considered as a single product, or 0.06 and 180 minutes when mixture of calcite and vaterite can be considered. The coexistence of vaterite with calcite at solid-liquid ratio of 0.06 or higher was interpreted to be the case where vaterite formed in the later stage and did not change to calcite until the reaction was completed.
Keywords
Autoclave Lightweight Concrete (ALC); Mineral Carbonation; Calcite; Vaterite; Aragonite;
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