Fine Bauxite Recovery Using a Plate-Packed Flotation Column
Abstract
:1. Introduction
2. Materials and Methods
2.1. Flotation Apparatus and Procedures
- (1)
- Grind 2 kg of the bauxite ore (collected from a bauxite mine located in Henan Province, Luoyang, China) until its average particle size (D50) reaches about 20 μm;
- (2)
- Condition the feed slurry in the slurry mixing tank at room temperature and pH 9.5 (sodium carbonate as pH modifier). Add 100 g/t hexametaphosphate into the feed slurry then stir for 3 min. Followed by adding 1200 g/t sodium oleate and conditioning for 4 min. All three reagents are analytical grade supplied by Aladdin Biochem. Tech., Shanghai, China. The initial slurry solid concentration is 15%;
- (3)
- Turn on the air compressor (0.6 MPa), and adjust air inlet flowrate to 2.5 L/min; Turn on the peristaltic pump, and adjust feed flowrate to 3.34 L/min. When foams start to flow out from the top of the column, collect the froth product as concentrate K for a period of 12 min, after which the slurry remaining in the column is collected in mixing tank as tailings X. The column flotation test is running at batch mode;
- (4)
- Filter and dry the concentrate K and tailings X, followed by elemental analysis using X-ray fluorescence. Additionally, perform particle size analysis on the concentrate K using a laser particle size analyzer (Mastersize 2000). Both instruments are from Malver Panalytical, Malvern, UK.
2.2. Simulation Procedures
3. Results
3.1. Flotation Results
3.2. Bubble Characteristics
3.3. Turbulence Characteristics
4. Discussion
5. Conclusions
- The packing-plates can significantly reduce the turbulent kinetic energy and promote the formation of a milder turbulent environment in the collection area. This will weaken the collision, merging, and fragmentation behaviors of bubbles, contributing to the formation of small-sized bubbles in flotation column.
- Packing-plates can optimize bubble size distribution in the flotation column, and increase the proportion of micro-bubbles. According to the simulation results, the mean diameter of bubbles was reduced from 3.03 mm to 2.80 mm by packing-plates in flotation column. For mineral particles with a diameter of 20 μm, the capture probability with packing-plates is 1.14 times that of without packing.
- Packing-plates in the collection zone of a column can improve bauxite flotation performance and enhance the recovery of fine bauxite particles. With packing, the Al2O3 recovery increased by 2.11%, and the Al2O3 grade increased by 1.85%.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
Diameter of column (mm) | |
Thickness of plate(mm) | |
Turbulent kinetic energy (m2/s2) | |
Capture rate (%) | |
Collision rate (%) | |
Adhesion rate (%) | |
Particle radius (μm) | |
Bubble radius (mm) | |
Reynolds number of bubbles | |
Relative velocity of bubble (m/s) | |
Induction time (s) | |
Contact angle of mineral (°) | |
Turbulent energy dissipation rate (m2/s3) | |
Fluid density (Kg/m3) | |
Dynamic viscosity of fluid (Pa·s) | |
Kinematic viscosity of fluid (m2/s) | |
Bubble diameter (mm) | |
Bubble density (Kg/m3) | |
Capture rate of PFC | |
Capture rate of UFC |
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Zhang, P.; Jin, S.; Ou, L.; Zhang, W.; Zhu, Y. Fine Bauxite Recovery Using a Plate-Packed Flotation Column. Metals 2020, 10, 1184. https://doi.org/10.3390/met10091184
Zhang P, Jin S, Ou L, Zhang W, Zhu Y. Fine Bauxite Recovery Using a Plate-Packed Flotation Column. Metals. 2020; 10(9):1184. https://doi.org/10.3390/met10091184
Chicago/Turabian StyleZhang, Pengyu, Saizhen Jin, Leming Ou, Wencai Zhang, and Yuteng Zhu. 2020. "Fine Bauxite Recovery Using a Plate-Packed Flotation Column" Metals 10, no. 9: 1184. https://doi.org/10.3390/met10091184
APA StyleZhang, P., Jin, S., Ou, L., Zhang, W., & Zhu, Y. (2020). Fine Bauxite Recovery Using a Plate-Packed Flotation Column. Metals, 10(9), 1184. https://doi.org/10.3390/met10091184