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CO2 capture performance of a CaO sorbent modified with fulvic acid for the calcium looping cycle

吸附剂 碳化作用 煅烧 化学 腐植酸 碳化 烟气 钙环 吸附 化学工程 环境化学 核化学 矿物学 有机化学 催化作用 肥料 工程类
作者
Dazhan Jiang,Yaru Wang,Zetong Li,Shuaipeng Li,Li Zhang,Luhan Chen,Zhiguo Sun
出处
期刊:Greenhouse Gases-Science and Technology [Wiley]
卷期号:13 (3): 421-431
标识
DOI:10.1002/ghg.2213
摘要

Abstract Capturing CO 2 from fossil fuel combustion is of importance for mitigation of climate warming. Among the CO 2 capture technologies, the calcium‐based sorbent method is promising. However, the most prominent problem of this method at present is that the activity of the sorbent decreases as the number of cycle reactions increases. It seriously affects the industrial application of the calcium‐based sorbent method in carbon capture technology. Fulvic acid (FA) is a biologically active and soluble component of humic acid. Compared with other humic acids, it contains more oxygen and heterocyclic rings. Also, the rings are connected by bridge bonds. Therefore, the ability of FA to chelate cations and its adsorption capacity is stronger than the other humic acids. Therefore, in this work, we first proposed using FA to modify CaO to improve CO 2 capture from flue gas. The effects of calcination temperature, carbonation temperature, reaction time and the amount of doped FA on the carbonation conversion rate (CCR) of CaO modified with FA (FA/CaO) were studied in the calcining/carbonizing room at atmospheric pressure. The experiment showed that the first CCR ( X 1 ) of FA/CaO reached 0.872 under the optimal conditions, which was 31% higher than X 1 of original CaO. The 20th CCR ( X 20 ) was still as high as 0.47, which was three times than X 20 of original CaO. In addition, the sorbent was analyzed and characterized by XRD, SEM, BET and LPSA. Due to the doped FA, the microstructure of CaO became fluffy and open, which improved the specific surface area and pore size of CaO. It indicated that the addition of FA was beneficial to the diffusion and absorption of CO 2 and delayed the appearance of sintering, which significantly enhanced the CO 2 capture performance of CaO. Using FA to modify CaO to capture CO 2 provides an idea for efficient carbon capture, and has practical application potential. © 2023 Society of Chemical Industry and John Wiley & Sons, Ltd.
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