A method for recovery of iron, titanium, and vanadium from vanadium-bearing titanomagnetite

被引:0
作者
Yi-min Zhang
Li-na Wang
De-sheng Chen
Wei-jing Wang
Ya-hui Liu
Hong-xin Zhao
Tao Qi
机构
[1] University of Chinese Academy of Sciences,Key Laboratory of Green Process and Engineering, Institute of Process Engineering
[2] National Engineering Laboratory for Hydrometallurgical Cleaner Production Technology,undefined
[3] Chinese Academy of Sciences,undefined
来源
International Journal of Minerals, Metallurgy, and Materials | 2018年 / 25卷
关键词
recovery; vanadium; titanomagnetite; direct reduction; sodium oxidation; smelting separation; water leaching;
D O I
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中图分类号
学科分类号
摘要
An innovative method for recovering valuable elements from vanadium-bearing titanomagnetite is proposed. This method involves two procedures: low-temperature roasting of vanadium-bearing titanomagnetite and water leaching of roasting slag. During the roasting process, the reduction of iron oxides to metallic iron, the sodium oxidation of vanadium oxides to water-soluble sodium vanadate, and the smelting separation of metallic iron and slag were accomplished simultaneously. Optimal roasting conditions for iron/slag separation were achieved with a mixture thickness of 42.5 mm, a roasting temperature of 1200°C, a residence time of 2 h, a molar ratio of C/O of 1.7, and a sodium carbonate addition of 70wt%, as well as with the use of anthracite as a reductant. Under the optimal conditions, 93.67% iron from the raw ore was recovered in the form of iron nugget with 95.44% iron grade. After a water leaching process, 85.61% of the vanadium from the roasting slag was leached, confirming the sodium oxidation of most of the vanadium oxides to water-soluble sodium vanadate during the roasting process. The total recoveries of iron, vanadium, and titanium were 93.67%, 72.68%, and 99.72%, respectively.
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页码:131 / 144
页数:13
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