Modeling and simulation of samarium and neodymium separation by a solvent extraction process

被引:2
作者
Dourado, Marcelo De Luccas [1 ]
de Carvalho, Davi Goncalves [1 ]
Vera, Ysrael Marrero [1 ]
机构
[1] Ctr Mineral Technol CETEM, Met Proc & Environm Coordinat, Pedro Calmon Ave 900, BR-21941908 Rio De Janeiro, RJ, Brazil
关键词
Neodymium; Samarium; Solvent extraction; Modeling; Simulation; D(2)EHPA; RARE-EARTH-ELEMENTS; ACID SOLUTIONS; EQUILIBRIUM; METALS; D2EHPA;
D O I
10.1007/s43153-023-00411-1
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The demand for permanent magnets is expected to increase in the 2021-2030 decade, which will require a commensurate increase in the production of samarium (Sm) and neodymium (Nd). Since these metals are considered critical and due to their abundance in Brazilian territory, the Brazilian government and mining companies must master the refining of these metals through autochthonous technologies. Thus, we developed a process to separate the light (La, Ce, Pr and Nd) from the medium (Sm, Eu and Gd) and heavy (Tb-Lu and Y) rare earth elements (REE) with D(2)EHPA by empirical modeling of solvent extraction (SX) processes. The experimental methodology included three phases: equilibrium data acquisition from batch experiments, solvent extraction simulation, and continuous process trials to validate the model on a mini-pilot scale. Our simulation predicted 99.5% Sm organic recovery and 80% Nd aqueous recovery in a seven-stage process and 0.30 A/O ratio, validated in the continuous trial. This work paves the way for establishing Brazilian technology to obtain the constituent elements of permanent magnets.
引用
收藏
页码:413 / 420
页数:8
相关论文
共 26 条
[1]   Purification of rare earth elements from monazite sulphuric acid leach liquor and the production of high-purity ceric oxide [J].
Abreu, Renata D. ;
Morais, Carlos A. .
MINERALS ENGINEERING, 2010, 23 (06) :536-540
[2]  
Azevedo E G de., 2013, Engenharia de Processos de Separacao, V2a
[3]   Rare earth elements: A review of applications, occurrence, exploration, analysis, recycling, and environmental impact [J].
Balaram, V. .
GEOSCIENCE FRONTIERS, 2019, 10 (04) :1285-1303
[4]  
British Geological Survey, 2017, BUR RECH GEOL MIN DE
[5]   Solvent extraction of gadolinium (III) from hydrochloric acid solutions with cationic extractants D2EHPA and Ionquest 801 [J].
de Morais, Carlos Antonio ;
Mansur, Marcelo Borges .
TRANSACTIONS OF THE INSTITUTIONS OF MINING AND METALLURGY SECTION C-MINERAL PROCESSING AND EXTRACTIVE METALLURGY, 2014, 123 (02) :61-66
[6]   The story of rare earth elements (REEs): Occurrences, global distribution, genesis, geology, mineralogy and global production [J].
Dushyantha, Nimila ;
Batapola, Nadeera ;
Ilankoon, I. M. S. K. ;
Rohitha, Sudath ;
Premasiri, Ranjith ;
Abeysinghe, Bandara ;
Ratnayake, Nalin ;
Dissanayake, Kithsiri .
ORE GEOLOGY REVIEWS, 2020, 122
[7]   The Influence of Lactic Acid Concentration on the Separation of Light Rare Earth Elements by Continuous Liquid-Liquid Extraction with 2-Ethylhexyl Phosphonic Acid Mono-2-ethylhexyl Ester [J].
Gomes, Rafael Decarvalho ;
Seruff, Luciana Amaral ;
Waineraich Scal, Maira Labanca ;
Vera, Ysrael Marrero .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2018, 49 (01) :460-465
[8]  
Gupta C.K., 2015, Extractive Metallurgy of Rare Earths
[9]   Solvent extraction equilibrium of dysprosium(III) from nitric acid solutions with 2-ethylhexylphosphonic acid mono-2-ethylhexyl ester [J].
Huang Ying ;
Tanaka Mikiya .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2010, 20 (04) :707-711
[10]  
Kinnunen J., 1957, Chemist Analyst, V46, P92