碳化作用
碳化
材料科学
水泥
抗压强度
二氧化碳
矿化(土壤科学)
化学工程
环境科学
扩散
气体扩散
制浆造纸工业
工作(物理)
废物管理
工艺工程
粒径
复合材料
动能
碳化
动力学
火山灰反应
作者
Z. Tabrizi,Chayan Carmenate Rodríguez,Elena Barbera,Wilson Ricardo Leal da Silva,Fabrizio Bezzo
标识
DOI:10.1021/acs.iecr.5c02835
摘要
Carbon dioxide mineralization via wet carbonation of industrial Recycled Concrete Fines (RCFs) offers a promising pathway for mitigating emissions in the cement industry, necessitating reliable kinetic models for technology scale-up. This work proposes a validated diffusion-based Shrinking Core Model describing the wet carbonation kinetics of RCFs. The model, based on parabolic diffusion law, is rigorously selected and calibrated among mineralization models in wet systems. Experimental results demonstrate a maximum carbonation efficiency of 0.81, corresponding to 95 kg CO2 uptake per tonne of RCFs, and acceptable compressive strength development when incorporating RCFs up to 10% in blended cement. Reaction rates showed a minimal temperature impact due to the offset between the CO2 solubility and diffusion through the product layer. Compared to Recycled Cement Paste (RCP) carbonation, higher diffusion coefficients are predicted, likely caused by looser product layer. Analysis highlights the importance of particle size and the CO2 partial pressure, providing insights for efficient scale-up.
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