CO2 sequestration by ammonia-enhanced phosphogypsum mineral carbonation: Development and optimization of reaction kinetic model
Seong-Hoon Yi
1
,
Yi Su
1, 2, 3
,
Borui Li
1
,
Borui Li
1, 2, 3
,
Wu Zhou
1, 2, 3
,
Weizhe Jie
1, 2, 3
,
Li Yang
1
,
Yang Li
1, 2, 3
,
Hua Zhang
1
,
Hua Zhang
1, 2, 3
,
Hongwei Ni
1
,
Hongwei Ni
1, 2, 3
Publication type: Journal Article
Publication date: 2024-06-01
scimago Q1
wos Q2
SJR: 0.840
CiteScore: 7.9
Impact factor: 4.3
ISSN: 00092509, 18734405
General Chemistry
General Chemical Engineering
Industrial and Manufacturing Engineering
Applied Mathematics
Abstract
Comparing of existing kinetic models for direct mineral carbonation by solid waste, an optimized kinetic model was developed to depict the relationship between phosphogypsum carbonation ratio and reaction time. Based on the optimized model, the reaction mechanism of CO2 sequestration by ammonia-enhanced phosphogypsum mineral carbonation was analyzed. The experimental results show that, under specific conditions, including an ammonia ratio of 2.3, room temperature (25 °C), a liquid–solid ratio of 5:1, a gas flow rate of 200 mL/min, and a rotational speed of 500 rpm, phosphogypsum achieved its peak carbonation efficiency of 91 % within 30 min. The optimized model fitting curve has a high consistency with the experimental data, and the average R2 value is 0.991. The process of ammonia-enhanced phosphogypsum mineral carbonation comprises three distinct sub-processes. It is consisted of mass transfer in gas–liquid interface and solid–liquid interface, respectively, and product layer diffusion. Among them, the gas–liquid mass transfer is identified as the rate-controlling step in the mineral carbonation process. The present study provides a basis for the operation optimization and large-scale utilization of phosphogypsum mineral carbonation.
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18
Total citations:
18
Citations from 2024:
17
(94.45%)
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GOST
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Yi S. et al. CO2 sequestration by ammonia-enhanced phosphogypsum mineral carbonation: Development and optimization of reaction kinetic model // Chemical Engineering Science. 2024. Vol. 292. p. 119967.
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Yi S., Su Y., Li B., Li B., Zhou W., Jie W., Yang L., Li Y., Zhang H., Zhang H., Ni H., Ni H. CO2 sequestration by ammonia-enhanced phosphogypsum mineral carbonation: Development and optimization of reaction kinetic model // Chemical Engineering Science. 2024. Vol. 292. p. 119967.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1016/j.ces.2024.119967
UR - https://linkinghub.elsevier.com/retrieve/pii/S0009250924002677
TI - CO2 sequestration by ammonia-enhanced phosphogypsum mineral carbonation: Development and optimization of reaction kinetic model
T2 - Chemical Engineering Science
AU - Yi, Seong-Hoon
AU - Su, Yi
AU - Li, Borui
AU - Li, Borui
AU - Zhou, Wu
AU - Jie, Weizhe
AU - Yang, Li
AU - Li, Yang
AU - Zhang, Hua
AU - Zhang, Hua
AU - Ni, Hongwei
AU - Ni, Hongwei
PY - 2024
DA - 2024/06/01
PB - Elsevier
SP - 119967
VL - 292
SN - 0009-2509
SN - 1873-4405
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2024_Yi,
author = {Seong-Hoon Yi and Yi Su and Borui Li and Borui Li and Wu Zhou and Weizhe Jie and Li Yang and Yang Li and Hua Zhang and Hua Zhang and Hongwei Ni and Hongwei Ni},
title = {CO2 sequestration by ammonia-enhanced phosphogypsum mineral carbonation: Development and optimization of reaction kinetic model},
journal = {Chemical Engineering Science},
year = {2024},
volume = {292},
publisher = {Elsevier},
month = {jun},
url = {https://linkinghub.elsevier.com/retrieve/pii/S0009250924002677},
pages = {119967},
doi = {10.1016/j.ces.2024.119967}
}