Mechanistic Study and Application of Anionic/Cationic Combination Collector ST-8 for the Flotation of Spodumene
Abstract
:1. Introduction
2. Experiment
2.1. Ore Samples, Main Reagents and Instruments
2.2. Test Method
2.2.1. Flotation Test
2.2.2. Zeta Potential Analysis
2.2.3. Surface Tension Analysis
2.2.4. Fourier Transform Infrared Spectroscopy (FTIR) Analysis
3. Results and Discussion
3.1. Effect of the Molar Ratio of NaOL and DDA and pH Value on the Floatability of Spodumene
3.2. Contact Angle Analysis
3.3. Effect of Combined Collectors on Zeta Potential of Spodumene Surface
3.4. Analysis of Surface Tension Determination of Combined Collecting Agents and Calculation of Synergistic Parameters
3.5. Infrared Spectrum Analysis of the Product of Combined Collector on Spodumene and Feldspar Surfaces
3.6. Solution Chemistry
4. Closed Circuit Test
5. Conclusions
- In the context of flotation separation between individual minerals, spodumene and feldspar, the optimal molar combination ratio between the anionic collector NaOL and the cationic collector DDA is found to be in the range of 6:1 to 10:1. Furthermore, the pH range that yields an optimal separation effect is approximately 8.5.
- Upon the interaction of the combined collector with both spodumene and feldspar, a discernible pattern emerges. The degree of negative shift in the zeta potential of spodumene surfaces is notably more pronounced in comparison to that observed on the surfaces of feldspar. Coinciding with this, the intensity of absorption peaks after the interaction of the combined collector with spodumene is markedly higher than that observed with feldspar. These findings collectively indicate a substantial divergence in the adsorption capacity of the combined collector onto the surfaces of spodumene and feldspar. This divergence is further indicative of a heightened selectivity toward spodumene as opposed to feldspar. Consequently, this enhanced selectivity enables the effective separation of spodumene and feldspar.
- The surface tension attributed to the combined collector registers lower values in comparison to when the anionic and cationic collectors are employed independently. This reduction underscores the potent ability of the combined collector to mitigate the surface tension at the gas-liquid interface, consequently augmenting the hydrophobicity of the mineral surfaces.
- The absorption peak associated with the combined collector exhibits resemblances to those found in both spodumene and feldspar spectra. However, a pronounced divergence becomes evident in the intensity of the absorption peak after the interaction of the combined collector with spodumene compared to that with feldspar. This contrast in intensity signifies the heightened selectivity inherent to the anionic and cationic combined collector, specifically towards spodumene. Consequently, this stronger selectivity empowers the successful separation of spodumene and feldspar.
- The outcomes of closed-circuit tests affirm the achievement of a final flotation index, resulting in a Li2O grade of 6.34% and an impressive Li2O recovery rate of 88.51%. This notable enhancement is realized through a closed-circuit process involving a sequence of one-stage rougher flotation, three-stage cleaner flotation, and one-stage scavenger flotation, culminating in a productive cycle of mineral processing.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Chemical Composition | Li2O | Na2O | K2O | SiO2 | Al2O3 | Fe2O3 |
---|---|---|---|---|---|---|
spodumene | 7.86 | 0.15 | 0.04 | 62.48 | 27.43 | 0.13 |
albite | — | 11.60 | 0.14 | 66.43 | 20.58 | 0.25 |
Element | Li2O | P2O5 | MnO | Cs2O | Rb2O | Na2O | MgO | K2O | Fe2O3 |
---|---|---|---|---|---|---|---|---|---|
Content (%) | 1.19 | 0.30 | 0.15 | 0.01 | 0.12 | 3.95 | 0.02 | 2.27 | 0.80 |
Element | Al2O3 | SiO2 | CaO | BeO * | Sn * | Ta2O5 * | Nb2O5 * | Ga * | TFe |
Content (%) | 16.85 | 74.36 | 0.23 | 338 | 98.4 | 68. 5 | 90.1 | 29.4 | 0.28 |
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Zhao, J.; Luo, H.; Liu, Y.; Liu, J.; Peng, L.; Cen, M.; Li, F. Mechanistic Study and Application of Anionic/Cationic Combination Collector ST-8 for the Flotation of Spodumene. Minerals 2023, 13, 1177. https://doi.org/10.3390/min13091177
Zhao J, Luo H, Liu Y, Liu J, Peng L, Cen M, Li F. Mechanistic Study and Application of Anionic/Cationic Combination Collector ST-8 for the Flotation of Spodumene. Minerals. 2023; 13(9):1177. https://doi.org/10.3390/min13091177
Chicago/Turabian StyleZhao, Jun, Huihua Luo, Yutong Liu, Ju Liu, Liqing Peng, Mei Cen, and Fengyuan Li. 2023. "Mechanistic Study and Application of Anionic/Cationic Combination Collector ST-8 for the Flotation of Spodumene" Minerals 13, no. 9: 1177. https://doi.org/10.3390/min13091177
APA StyleZhao, J., Luo, H., Liu, Y., Liu, J., Peng, L., Cen, M., & Li, F. (2023). Mechanistic Study and Application of Anionic/Cationic Combination Collector ST-8 for the Flotation of Spodumene. Minerals, 13(9), 1177. https://doi.org/10.3390/min13091177