Distribution Kinetics of Rare Earth Elements in Copper Smelting

被引:8
|
作者
Klemettinen, Lassi [1 ]
Aromaa, Riina [1 ]
Danczak, Anna [1 ]
O'Brien, Hugh [2 ]
Taskinen, Pekka [1 ]
Jokilaakso, Ari [1 ]
机构
[1] Aalto Univ, Sch Chem Engn, Dept Chem & Met Engn, Espoo 02150, Finland
[2] Geol Survey Finland, Vuorimiehentie 2, FIN-02150 Espoo, Finland
关键词
flash smelting; REE; lanthanum; neodymium; kinetics; LA-ICP-MS; EXTRACTION; MATTE;
D O I
10.3390/su12010208
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The use of rare earth elements (REEs) is increasing, mainly due to the growing demand for electric vehicles and new applications in green technology. This results in annual growth of the in-use REE stocks and the amount of End-of-Life (EoL) products containing REEs. REEs are considered critical elements by the EU, mainly because the rest of the world is dependent on China's supply. Recycling of REEs can help alleviate the criticality of REEs, however, no REEs are currently functionally recycled. In this study, the time-dependent behavior of REEs in copper matte-slag system in primary copper smelting conditions was investigated experimentally at a laboratory scale. Lanthanum and neodymium were chosen to represent all REEs, as they are generally found in the highest concentrations in EoL products, and because REEs all have similar chemical behavior. The experiments were conducted as a function of time in air and argon atmospheres. SEM-EDS, EPMA and LA-ICP-MS methods were used for sample characterization. The results of this work indicate that the REEs strongly favor the slag and the deportment to the slag begins almost instantly when the system reaches high temperatures. With increasing contact times, the REEs distribute even more strongly into the slag phase, where they may be recovered and recycled, if their concentrations are sufficiently high and a suitable hydrometallurgical process can be found.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] Rare earth elements distribution of tertiary phosphorites in Tunisia
    Sassi, A. Beji
    Zaier, A.
    Joron, J. L.
    Treuil, M.
    Mineral Deposit Research: Meeting the Global Challenge, Vols 1 and 2, 2005, : 1061 - 1064
  • [32] Kinetics of Roasting Decomposition of the Rare Earth Elements by CaO and Coal
    Yuan, Shuai
    Yang, He
    Xue, Xiang-Xin
    Zhou, Yan
    METALS, 2017, 7 (06):
  • [33] A study of the migration and adsorption kinetics of rare earth elements in soils
    Gao, Z
    Hong, W
    Xiong, B
    Zheng, W
    Wu, Y
    RARE EARTHS '98, 1999, 315-3 : 520 - 524
  • [34] Effect of Rare Earth Elements on Kinetics of Salt Bath Vanadizing
    TAO Xiao ke
    Journal of Rare Earths, 2000, (04) : 311 - 311
  • [35] Sulpho-carbonitriding kinetics and effect of rare earth elements
    Ren, Huiping
    Liu, Zongchang
    Niu, Songpu
    Jinshu Rechuli/Heat Treatment of Metals, 1997, (02): : 7 - 9
  • [36] FRACTIONATION OF ELEMENTS DURING COPPER SMELTING
    GERMANI, MS
    SMALL, M
    ZOLLER, WH
    MOYERS, JL
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1981, 15 (03) : 299 - 305
  • [37] Forms of Rare Earth Elements in Soils: Ⅱ. Differentiation of Rare Earth Elements
    ZHU JIAN-GUO and XING GUANG-XILMCP
    Pedosphere, 1992, (03) : 193 - 200
  • [38] Effects of rare earth elements on the distribution of mineral elements and heavy metals in horseradish
    Wang, Lihong
    Huang, Xiaohua
    Zhou, Qing
    CHEMOSPHERE, 2008, 73 (03) : 314 - 319
  • [39] Distribution of rare earth elements in agricultural soil and human body (scalp hair and urine) near smelting and mining areas of Hezhang, China
    Meryem, Briki
    Ji Hongbing
    Gao Yang
    Ding Huajian
    Li Cai
    JOURNAL OF RARE EARTHS, 2016, 34 (11) : 1156 - 1167
  • [40] Distribution of rare earth elements and other critical elements in beneficiated Pennsylvania anthracites
    Hower, James C.
    Eble, Cortland F.
    Wang, Na
    Dai, Shifeng
    FUEL, 2021, 304