This work was financially supported by the National Natural Science Foundation of China(ZX20230386);the 2023 Special Project for High-Industrial Base Reconstruction Quality Development of the Manufacturing Industry(2023ZY01019-11);the Jiangxi Province "Double Thousand Plan" Project(S2021DQKJ2198);the sixth batch of top talent support funds.(QNBJ-2022-04)
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收稿:2025-05-20,
修回:2025-08-13,
录用:2025-08-14,
网络首发:2025-09-01,
纸质出版:2026-01
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Xue Haiyue, Lv Guozhi, Wang Long, 等. Bastnaesite carbochlorination process with fluorine fixation agents:An approach for low-waste rare earth extraction[J]. 中国化学工程学报(英文), 2026,89(1):47-58.
Xue Haiyue, Lv Guozhi, Wang Long, et al. Bastnaesite carbochlorination process with fluorine fixation agents:An approach for low-waste rare earth extraction[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 47-58.
Xue Haiyue, Lv Guozhi, Wang Long, 等. Bastnaesite carbochlorination process with fluorine fixation agents:An approach for low-waste rare earth extraction[J]. 中国化学工程学报(英文), 2026,89(1):47-58.DOI:
Xue Haiyue, Lv Guozhi, Wang Long, et al. Bastnaesite carbochlorination process with fluorine fixation agents:An approach for low-waste rare earth extraction[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 47-58.DOI:
Bastnaesite carbochlorination process with fluorine fixation agents:An approach for low-waste rare earth extraction
bastnaesite has long been a global research focus. The carbochlorination process
as an efficient and low-cost extraction method
can be applied to treat bastnaesite
achieving ideal rare-earth extraction results in just one-step reaction. By using inexpensive chlorine gas as the chlorinating agent
it avoids lengthy procedural steps and the generation of acid-base waste liquids. Based on this
we propose a novel carbochlorination process for bastnaesite involving a fluorine-fixing agent. Thermodynamic data for the carbochlorination process of bastnaesite were calculated using the group contribution method. Thermodynamic feasibility was verified through Gibbs free energy. The effects of different chlorination times
fluorine-fixing agent dosages
chlorine flow rates
and chlorination temperatures on the carbochlorination process of bastnaesite were investigated. Experimental studies showed that under optimal chlorination conditions
a temperature of 800
◦
C
a duration of 60 min
a fluorine-fixing agent dosage of 10%
and a chlorine flow rate of 10 L·min
- 1
the chlorination rates of rare-earth elements
Ca
Ba
and Fe in bastnaesite reached 96%
99%
98%
and 99%
respectively. The reaction mechanism was explored and analyzed based on characterization results such as mineral phase composition
micromorphology and thermogravimetry of water-washed residues under different chlorination conditions. Additionally
kinetic experiments were conducted at varying reaction temperatures and chlorine flow rates
revealing that the carbon-chlorination process is primarily controlled by chemical reactions.
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相关作者
Baibin Yang
Shihong Chen
Haowen Ren
Yang Qiu
Chong Chen
Yong Guo
Chunhui Luo
Qiang Zhao
相关机构
School of Chemical Engineering, Sichuan University
State Key Laboratory of Hydraulics and Mountain River Engineering, College of Water Resource & Hydropower, Sichuan University
School of Chemical Engineering and Light Industry, Guangdong University of Technology
Guangdong Provincial Key Laboratory of Plant Resources Biorefinery, Guangdong University of Technology
Guangzhou Key Laboratory of Clean Transportation Energy Chemistry, Guangdong University of Technology