Multicomponent Model for the Prediction of Nuclear Waste/Rare-Earth Extraction Processes

被引:23
|
作者
Spadina, Mario [1 ]
Bohinc, Klemen [2 ]
Zemb, Thomas [1 ]
Dufreche, Jean-Francois [1 ]
机构
[1] Univ Montpellier, CEA CNRS, Ecole Natl Super Chim Montpellier, Inst Chim Separat Marcoule, F-30207 Bagnols Sur Ceze, France
[2] Univ Ljubljana, Fac Hlth Sci, Ljubljana 1000, Slovenia
基金
欧洲研究理事会;
关键词
LIQUID-LIQUID-EXTRACTION; SOLVENT-EXTRACTION; TRIVALENT ACTINIDES; REVERSE MICELLES; PHOSPHORIC-ACID; RARE-EARTHS; MALONAMIDE; SEPARATION; COMPLEXATION; CURVATURE;
D O I
10.1021/acs.langmuir.8b01759
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We develop a minimal model for the prediction of solvent extraction. We consider a rare earth extraction system for which the solvent phase is similar to water-poor micro emulsions. All physical molecular quantities used in the calculation can be measured separately. The model takes into account competition complexation, mixing entropy of complexed species, differences of salt concentrations between the two phases, and the surfactant nature of extractant molecules. We consider the practical case where rare earths are extracted from iron nitrates in the presence of acids with a common neutral complexing extractant. The solvent wetting of the reverse aggregates is taken into account via the spontaneous packing. All the water-in-oil reverse aggregates are supposed to be spherical on average. The minimal model captures several features observed in practice: reverse aggregates with different water and extractant content coexist dynamically with monomeric extractant molecules at and above a critical aggregate concentration (CAC). The CAC decreases upon the addition of electrolytes in the aqueous phase. The free energy of transfer of an ion to the organic phase is lower than the driving complexation. The commonly observed log log relation used to determine the apparent stoichiometry of complexation is valid as a guideline but should be used with care. The results point to the fact that stoichiometry, as well as the probabilities of a particular aggregate, is dependent on the composition of the entire system, namely the extractant and the target solutes' concentrations. Moreover, the experimentally observed dependence of the extraction efficiency on branching of the extractant chains in a given solvent can be quantified. The evolution of the distribution coefficient of particular rare earth, acid, or other different metallic cations can be studied as a function of initial extractant concentration through the whole region that is typically used by chemical engineers. For every chemical species involved in the calculation, the model is able to predict the exact equilibrium concentration in both the aqueous and the solvent phases at a given thermodynamic temperature.
引用
收藏
页码:10434 / 10447
页数:14
相关论文
共 50 条
  • [31] Separation of Heavy Rare-Earth Elements from Light Rare-Earth Elements Via Solvent Extraction from a Neodymium Magnet Leachate and the Effects of Diluents
    Gergoric, Marino
    Ekberg, Christian
    Steenari, Britt-Marie
    Retegan, Teodora
    JOURNAL OF SUSTAINABLE METALLURGY, 2017, 3 (03) : 601 - 610
  • [32] Predictive Model for Ionic Liquid Extraction Solvents for Rare Earth Elements
    Grabda, Mariusz
    Oleszek, Sylwia
    Panigrahi, Mrutyunjay
    Kozak, Dmytro
    Eckert, Franck
    Shibata, Etsuro
    Nakamura, Takashi
    INTERNATIONAL CONFERENCE OF COMPUTATIONAL METHODS IN SCIENCES AND ENGINEERING 2015 (ICCMSE 2015), 2015, 1702
  • [33] Separation of Heavy Rare-Earth Elements from Light Rare-Earth Elements Via Solvent Extraction from a Neodymium Magnet Leachate and the Effects of Diluents
    Marino Gergoric
    Christian Ekberg
    Britt-Marie Steenari
    Teodora Retegan
    Journal of Sustainable Metallurgy, 2017, 3 : 601 - 610
  • [34] Comparison of Economical and Technical Indices on Rare Earth Separation Processes of Bastnasite by Solvent Extraction
    严纯华
    廖春生
    贾江涛
    王明文
    李标国
    JournalofRareEarths, 1999, (01) : 59 - 64
  • [35] A review of environmental aspect of rare earth element extraction processes and solution purification techniques
    Talan, Deniz
    Huang, Qingqing
    MINERALS ENGINEERING, 2022, 179
  • [36] Comparison of economical and technical indices on rare earth separation processes of bastnasite by solvent extraction
    Yan, CH
    Liao, CS
    Jia, JT
    Wang, MW
    Li, BG
    JOURNAL OF RARE EARTHS, 1999, 17 (01) : 58 - 63
  • [37] Effect of polar molecular organic solvents on non-aqueous solvent extraction of rare-earth elements
    Dewulf, Brecht
    Cool, Vincent
    Li, Zheng
    Binnemans, Koen
    SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 294
  • [38] Recovery of Rare-Earth Elements from Neodymium Magnet Waste Using Glycolic, Maleic, and Ascorbic Acids Followed by Solvent Extraction
    Marino Gergoric
    Antonin Barrier
    Teodora Retegan
    Journal of Sustainable Metallurgy, 2019, 5 : 85 - 96
  • [39] EXTRACTION AND SEPARATION OF RARE-EARTH ELEMENTS BY TRI-NORMAL-OCTYLMETHYLAMMONIUM NITRATE
    KOMASAWA, I
    HISADA, K
    MIYAMURA, M
    JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 1990, 23 (03) : 308 - 315
  • [40] Extraction of Rare-Earth Ions with an 8-Hydroxyquinoline Derivative in an Ionic Liquid
    Yang, Fan
    Kubota, Fukiko
    Kamiya, Noriho
    Goto, Masahiro
    SOLVENT EXTRACTION RESEARCH AND DEVELOPMENT-JAPAN, 2013, 20 : 123 - 129