Efficient Extraction of Vanadium from Vanadium–Titanium Magnetite Concentrate by Potassium Salt Roasting Additives
Abstract
:1. Introduction
2. Experimental
2.1. Materials
2.2. Procedure and Methods
3. Results and Discussion
3.1. Roasting Process
3.1.1. Effect of Different Additives and Their Dosage on the Vanadium Leaching Efficiency
3.1.2. Effect of Roasting Temperature and Roasting Time on Vanadium Leaching Efficiency
3.1.3. Analyses of Phase Transformation in the Roasting Process
3.2. Leaching Process
3.2.1. Effect of Leaching Temperature and Sulfuric Acid Concentration on the Vanadium Leaching Efficiency
3.2.2. Analyses of Phase Transformation in the Leaching Process
3.3. Kinetics Analyses of Vanadic Acid Leaching Process
3.3.1. Calculation of Apparent Activation Energy
3.3.2. Calculation of Reaction Orders
4. Conclusions
- The effects of potassium salt roasting additives were more efficient than traditional sodium and calcium salt. Particularly, K2SO4 was preferred as the roasting additive. Under certain conditions (the dosage of K2SO4 was 4 wt %, the roasting temperature was 900 °C, the roasting time was 1 h, the leaching temperature was 95 °C, the sulfuric acid concentration was 10% (v/v), and the leaching time was 1.5 h, with a liquid to solid ratio of 3 mL/g) the vanadium leaching efficiency increased from 41.17% with blank roasting to 71.37%.
- K2SO4 could fully destroy the structure of vanadium-bearing minerals such as magnetite, and could promote the formation of KVO3 to inhibit the formation of Ca(VO3)2 in the roasting process. Moreover, promoting the dissolution of sphene to release its vanadium in the leaching process significantly increases the vanadium leaching efficiency.
- The leaching process was controlled by internal diffusion; the apparent activation energy decreased from 37.43 kJ/mol of blank roasting to 26.31 kJ/mol of potassium salt roasting. At the same time, the reaction order with regard to sulfuric acid concentration decreased from 0.6588 to 0.5799. Therefore, potassium salt roasting could accelerate the leaching process and reduce the dependence on high temperature and high acidity to improve mineral activity.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Element | V2O5 | TiO2 | TFe | SiO2 | Al2O3 | CaO | MgO | S | Cu |
---|---|---|---|---|---|---|---|---|---|
Content | 1.10 | 19.72 | 44.2 | 9.85 | 3.14 | 4.71 | 0.78 | 0.026 | 0.002 |
Vanadium Phase | Magnetite | Ilmenite | Sphene |
---|---|---|---|
Content | 63.54 | 5.47 | 30.99 |
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Li, R.; Liu, T.; Zhang, Y.; Huang, J.; Xu, C. Efficient Extraction of Vanadium from Vanadium–Titanium Magnetite Concentrate by Potassium Salt Roasting Additives. Minerals 2018, 8, 25. https://doi.org/10.3390/min8010025
Li R, Liu T, Zhang Y, Huang J, Xu C. Efficient Extraction of Vanadium from Vanadium–Titanium Magnetite Concentrate by Potassium Salt Roasting Additives. Minerals. 2018; 8(1):25. https://doi.org/10.3390/min8010025
Chicago/Turabian StyleLi, Renmin, Tao Liu, Yimin Zhang, Jing Huang, and Chengbao Xu. 2018. "Efficient Extraction of Vanadium from Vanadium–Titanium Magnetite Concentrate by Potassium Salt Roasting Additives" Minerals 8, no. 1: 25. https://doi.org/10.3390/min8010025
APA StyleLi, R., Liu, T., Zhang, Y., Huang, J., & Xu, C. (2018). Efficient Extraction of Vanadium from Vanadium–Titanium Magnetite Concentrate by Potassium Salt Roasting Additives. Minerals, 8(1), 25. https://doi.org/10.3390/min8010025