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CO2 mineralization by typical industrial solid wastes for preparing ultrafine CaCO3: A review

矿化(土壤科学) 材料科学 化学工程 环境科学 环境化学 废物管理 化学 工程类 土壤科学 土壤水分
作者
Run Xu,Fuxia Zhu,Liang Zou,Shuqing Wang,Yanfang Liu,Jili Hou,Chenghao Li,Kuntong Song,Lingzhao Kong,Longpeng Cui,Zhiqiang Wang
出处
期刊:Green Energy & Environment [KeAi]
卷期号:9 (11): 1679-1697 被引量:34
标识
DOI:10.1016/j.gee.2024.08.002
摘要

Mineral carbonation is a promising CO 2 sequestration strategy that can utilize industrial wastes to convert CO 2 into high-value CaCO 3 . This review summarizes the advancements in CO 2 mineralization using typical industrial wastes to prepare ultrafine CaCO 3 . This work surveys the mechanisms of CO 2 mineralization using these wastes and its capacities to synthesize CaCO 3 , evaluates the effects of carbonation pathways and operating parameters on the preparation of CaCO 3 , analyzes the current industrial application status and economics of this technology. Due to the large amount of impurities in solid wastes, the purity of CaCO 3 prepared by indirect methods is greater than that prepared by direct methods. Crystalline CaCO 3 includes three polymorphs. The polymorph of CaCO 3 synthesized by carbonation process is determined the combined effects of various factors. These parameters essentially impact the nucleation and growth of CaCO 3 by altering the CO 2 supersaturation in the reaction system and the surface energy of CaCO 3 grains. Increasing the initial pH of the solution and the CO 2 flow rate favors the formation of vaterite, but calcite is formed under excessively high pH. Vaterite formation is favored at lower temperatures and residence time. With increased temperature and prolonged residence time, it passes through aragonite metastable phase and eventually transforms into calcite. Moreover, polymorph modifiers can decrease the surface energy of CaCO 3 grains, facilitating the synthesis of vaterite. However, the large-scale application of this technology still faces many problems, including high costs, high energy consumption, low calcium leaching rate, low carbonation efficiency, and low product yield. Therefore, it is necessary to investigate ways to accelerate carbonation, optimize operating parameters, develop cost-effective agents, and understand the kinetics of CaCO 3 nucleation and crystallization to obtain products with specific crystal forms. Furthermore, more studies on life cycle assessment (LCA) should be conducted to fully confirm the feasibility of the developed technologies. • Controllable preparation of ultrafine CaCO 3 by industrial wastes. • High-purity CaCO 3 can be synthetized by indirect carbonation method. • Large-scale application of the developed technologies still faces many problems. • More studies on the carbonation mechanism and pilot scale should be performed.
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