The decomposition possibility of vietnamese monazite concentrate by the pressure alkali method
- Authors: Le H.S.1, Luu X.D.1, Nguyen D.V.1, Bui C.T.1, Karelin V.A.2, Smorokov A.A.2
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Affiliations:
- Vietnam Atomic Energy Institute
- National Research Tomsk Polytechnic University
- Issue: Vol 336, No 3 (2025)
- Pages: 208-221
- Section: Articles
- URL: https://bakhtiniada.ru/2500-1019/article/view/289733
- DOI: https://doi.org/10.18799/24131830/2025/3/4949
- ID: 289733
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Abstract
The authors have studied the decomposition of monazite concentrate by alkali. They investigated the necessary decomposition conditions such as temperature, time, particle size and the ratio between alkali and monazite concentrate by mass (wt/wt). The decomposition is best performed at >140°C, within 8 hours, the required alkali and monazite concentrate ratio was 1,4/1, the ore particle size needs to be smaller than 48 . The decomposition efficiency was also only about 70%. If the desired recovery efficiency was higher than 90%, the alkali/concentrate ratio by mass needed to be at least 4/1, resulting in a large amount of residual alkali. To improve this process, the authors studied the decomposition of monazite concentrate by alkali under pressure. The monazite was taken from Ham Tan deposit. The effecting parameters such as temperature, time, ratio between NaOH/concentrate by mass and particle size of the concentrate were investigated. The results showed that, under the effect of pressure, decomposition occurs faster, more thoroughly and decomposition efficiency increases. The suitable temperature for concentrate decomposition was from 180 to 210°C, corresponding to a pressure of 4 to 7 at. The decomposition time was also reduced to 2 hours and the particle size of the concentrate was also larger to 55 with 70% alkali and ratio of alkali/concentrate was 1/1. The decomposition efficiency of rare earth elements reached 95%, while under the same conditions, U was 50% and Th was 77%. When the reaction time increased, the efficiency of rare earth elements decomposition did not change much, but the decomposition efficiency of radioactive elements tended to increase. For particle sizes >55 , the process efficiency decreased sharply, and changes in reaction conditions were needed to increase the decomposition efficiency.
Keywords
About the authors
Hai Son Le
Vietnam Atomic Energy Institute
Email: son.hut2006@gmail.com
ORCID iD: 0000-0003-2147-7425
PhD, Head of the Laboratory
Viet Nam, 48, Lang Ha street, Dong Da district, Hanoi, 11513Xuan Dinh Luu
Vietnam Atomic Energy Institute
Email: lxdinh79@gmail.com
ORCID iD: 0009-0005-1668-8844
PhD, Lead Researcher, Vice-president of Institute for Technology of Radioactive and Rare Earth Elements
Viet Nam, 48, Lang Ha street, Dong Da district, Hanoi, 11513Dinh Viet Nguyen
Vietnam Atomic Energy Institute
Email: dinhviet0701@gmail.com
ORCID iD: 0009-0001-8146-4362
Researcher
Viet Nam, 48, Lang Ha street, Dong Da district, Hanoi, 11513Cong Trinh Bui
Vietnam Atomic Energy Institute
Email: buictr@gmail.com
ORCID iD: 0009-0001-1014-0221
PhD, Researcher
Viet Nam, 48, Lang Ha street, Dong Da district, Hanoi, 11513Vladimir A. Karelin
National Research Tomsk Polytechnic University
Email: wolfraum@yandex.ru
Dr. Sc., Professor
Russian Federation, 30, Lenin avenue, Tomsk, 634050Andrey A. Smorokov
National Research Tomsk Polytechnic University
Author for correspondence.
Email: wolfraum@yandex.ru
ORCID iD: 0000-0002-1682-9038
Senior Lecturer
Russian Federation, 30, Lenin avenue, Tomsk, 634050References
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