Flotation recovery of rare earth oxides from hematite-quartz mixture using sodium oleate as a collector

被引:22
作者
Abaka-Wood, George Blankson [1 ]
Fosu, Shadrach [2 ]
Addai-Mensah, Jonas [1 ,3 ]
Skinner, William [1 ]
机构
[1] Univ South Australia, Future Ind Inst, Mawson Lakes Campus, Adelaide, SA 5095, Australia
[2] Univ Mines & Technol, Tarkwa, Ghana
[3] Namibia Univ Sci & Technol, Dept Min & Proc Engn, Windhoek, Namibia
关键词
Flotation; Hematite; Monazite; Quartz; Sodium oleate; Sodium silicate; Starch; IRON-ORES; SELECTIVE FLOTATION; FROTH FLOTATION; TECHNICAL NOTE; ADSORPTION; MECHANISM; STARCH; SEPARATION; MONAZITE; DEPRESSANTS;
D O I
10.1016/j.mineng.2019.105847
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Froth flotation plays a significant role in the beneficiation of rare earth elements (REE) minerals from differing ores. Monazite has been identified as one of the principal REE minerals in most iron oxide silicate rich tailings generated in Australia from the extraction of primary commodities such as copper and gold. These tailings generally contain hematite and quartz as the major gangue minerals. A previous investigation has identified almost identical flotation response between monazite and hematite in the presence of anionic collectors. Therefore, it is necessary to investigate the feasibility of selective flotation of rare earth oxides (REO) in monazite from hematite-quartz mixtures, to identify cost-effective processing methods. The flotation conditions for selective REO separation from model minerals mixtures were tested in a 1.2 L Denver flotation cell using sodium oleate as a collector. Sodium silicate and starch were tested as depressants for hematite and quartz. Results from the flotation tests revealed that the increased dosage of sodium oleate led to an increase in REO recovery with a corresponding decrease in upgrade, and increased hematite (Fe2O3) and quartz (SiO2) recoveries. In the absence of depressants, the separation of REO from a low grade mixture (0.83% REO feed grade) was unselective, where 3000 g/t sodium oleate recovered 98% REO at a grade of 1.31% (enrichment ratio, E = 1.58) along with 77% Fe2O3 and 37% SiO2 recoveries. However, the depressants reduced the flotation recovery of Fe2O3 and SiO2, which was shown by an improvement in REO grade. The flotation recovery of REO decreased to 84% with a corresponding increase in grade to 4.13% when 1000 g/t sodium silicate was used in the presence of 3000 g/t sodium oleate. Furthermore, 1000 g/t starch in the presence of 3000 g/t sodium oleate increased REO concentrate grade to 5.56% although the recovery decreased to 65%. Subsequently, a rougher-scavenger flotation test conducted with the mixed depressants (sodium silicate: starch, 1:1) produced a final concentrate recovering 61% REO at a grade of 6.25%. This study has shown that REO can be separated selectively from hematite-quartz rich mixtures by flotation when using sodium oleate as the collector and sodium silicate and starch as depressants.
引用
收藏
页数:11
相关论文
共 50 条
[31]   The activation mechanism of lead ions in the flotation of ilmenite using sodium oleate as a collector [J].
Chen, Pan ;
Zhai, Jihua ;
Sun, Wei ;
Hu, Yuehua ;
Yin, Zhigang .
MINERALS ENGINEERING, 2017, 111 :100-107
[32]   Potential application of an eco-friendly amine oxide collector in flotation separation of quartz from hematite [J].
Wang, Xinyang ;
Liu, Wengang ;
Duan, Hao ;
Liu, Wenbao ;
Shen, Yanbai ;
Gu, Xiaowei ;
Qiu, Jingping ;
Jia, Chunyun .
SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 278
[33]   Effect of Calcium Ion on the Flotation of Fluorite and Calcite Using Sodium Oleate as Collector and Tannic Acid as Depressant [J].
Qian, Yupeng ;
Qiu, Xuan ;
Shen, Tiewei ;
Huai, Yangyang ;
Chen, Bin ;
Wang, Zhen .
MINERALS, 2022, 12 (08)
[34]   Flotation Behavior of Different Colored Fluorites Using Sodium Oleate as a Collector [J].
Zheng, Renji ;
Ren, Zijie ;
Gao, Huimin ;
Qian, Yupeng .
MINERALS, 2017, 7 (09)
[35]   Flotation behaviors and mechanism of hemimorphite using sodium oleate as collector [J].
Liu, Cheng ;
Feng, Qi-Ming ;
Zhang, Guo-Fan .
Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals, 2016, 26 (04) :878-883
[36]   Rare Earth Elements Recovery from Primary and Secondary Resources Using Flotation: A Systematic Review [J].
Julapong, Pongsiri ;
Numprasanthai, Apisit ;
Tangwattananukul, Ladda ;
Juntarasakul, Onchanok ;
Srichonphaisarn, Palot ;
Aikawa, Kosei ;
Park, Ilhwan ;
Ito, Mayumi ;
Tabelin, Carlito Baltazar ;
Phengsaart, Theerayut .
APPLIED SCIENCES-BASEL, 2023, 13 (14)
[37]   Enhanced Pyrophyllite Flotation Performance Using Sodium Oleate as an Anionic Collector in the Presence of Ammonium Ion [J].
Seo, Joobeom ;
Choi, Junhyun ;
Kim, Wantae ;
Kim, Sang Bae ;
Bae, In-Kook .
MATERIALS TRANSACTIONS, 2020, 61 (08) :1645-1650
[38]   Synthesis of a novel hydroxyl quaternary ammonium collector and its selective flotation separation of quartz from hematite [J].
Liu, Wenbao ;
Tong, Kelin ;
Ding, Rui ;
Liu, Wengang ;
Zhao, Panxing ;
Sun, Wenhan ;
Zhao, Qiang ;
Zhao, Sikai .
MINERALS ENGINEERING, 2023, 200
[39]   Role of dissolved mineral species in selective flotation of smithsonite from quartz using oleate as collector [J].
Ejtemaei, Majid ;
Irannajad, Mehdi ;
Gharabaghi, Mahdi .
INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2012, 114 :40-47
[40]   Effect of HEDP on flotation separation of apatite from calcite using sodium oleate as collector [J].
Liu C. ;
Zheng Y.-F. ;
Yang S.-Y. .
Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals, 2021, 31 (06) :1632-1638