Leaching Behaviors of Calcium and Aluminum from an Ionic Type Rare Earth Ore Using MgSO4 as Leaching Agent
Abstract
:1. Introduction
2. Experiment
2.1. Characterization of Experimental ICREO
2.2. Batch Leaching Experimental Procedure
3. Results and Discussion
3.1. Theoretical Analysis of Precipitation Behaviors of Calcium and Aluminum
3.1.1. Precipitation Behavior of Calcium
3.1.2. Precipitation Behavior of Aluminum
3.2. Leaching Kinetics of Calcium and Aluminum
3.2.1. Leaching Kinetics of Calcium
3.2.2. Leaching Kinetics of Aluminum
3.3. Leaching Behaviors of Calcium and Aluminum in Columns
3.3.1. Effect of the MgSO4 Concentration on the Leaching Behaviors of Calcium and Aluminum
3.3.2. Effect of the Flow Rate of the Leaching Agent on the Leaching Behaviors of Calcium and Aluminum
3.3.3. Effect of Leaching Temperature on the Leaching Behaviors of Calcium and Aluminum
4. Conclusions
- (1)
- The leaching process of calcium from ICREO with MgSO4 is a physical ion-exchange process of IEP-Ca, which is controlled by internal diffusion. The activation energy is 8.97 kJ/mol. With the increase in the MgSO4 concentration, the leaching rate of calcium increases, so the volume-to-peak of the calcium concentration in the leachate will shift to an earlier time, and the peak concentration and leaching efficiency of calcium will increase. However, the flow rate and leaching temperature have a limited effect on calcium leaching. With the decrease in the flow rate and increase in temperature, the peak concentration of calcium slightly increases.
- (2)
- There are two reactions in the leaching process of aluminum with MgSO4: ion exchange and hydrolysis. The leaching reaction is controlled by internal diffusion, and the activation energy is 10.48 kJ/mol. The hydrolysis reaction of Al3+ is greatly affected by the concentration of Al3+ and reaction temperature. Raising the MgSO4 concentration and leaching temperature will intensify the hydrolysis reaction, which rapidly decreases the leaching efficiency of aluminum.
- (3)
- Because calcium has a faster leaching rate than rare earth, IEP-Ca will inevitably be leached into the leachate when most of the rare earth is leached by MgSO4. For aluminum, its hydrolytic tendency can be improved by increasing the leaching agent concentration and leaching temperature, so it can effectively reduce the content of aluminum in the leachate.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Element | RE2O3 | Mg | Ca | Al | Fe |
---|---|---|---|---|---|
Content (wt. %) | 0.150 | 0.005 | 0.025 | 0.003 | <0.001 |
Species | Equilibrium Constants | Equations | |
---|---|---|---|
lgK | 25 °C | 25 °C | |
−13.9 | |||
−7.1 | |||
−31.43 | |||
−4.96 | |||
−10.91 | |||
−17.02 | |||
−22.83 |
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He, Q.; Qiu, J.; Rao, M.; Xiao, Y. Leaching Behaviors of Calcium and Aluminum from an Ionic Type Rare Earth Ore Using MgSO4 as Leaching Agent. Minerals 2021, 11, 716. https://doi.org/10.3390/min11070716
He Q, Qiu J, Rao M, Xiao Y. Leaching Behaviors of Calcium and Aluminum from an Ionic Type Rare Earth Ore Using MgSO4 as Leaching Agent. Minerals. 2021; 11(7):716. https://doi.org/10.3390/min11070716
Chicago/Turabian StyleHe, Qiang, Jiang Qiu, Minglu Rao, and Yanfei Xiao. 2021. "Leaching Behaviors of Calcium and Aluminum from an Ionic Type Rare Earth Ore Using MgSO4 as Leaching Agent" Minerals 11, no. 7: 716. https://doi.org/10.3390/min11070716
APA StyleHe, Q., Qiu, J., Rao, M., & Xiao, Y. (2021). Leaching Behaviors of Calcium and Aluminum from an Ionic Type Rare Earth Ore Using MgSO4 as Leaching Agent. Minerals, 11(7), 716. https://doi.org/10.3390/min11070716