The Impact of Restricting Air Intake in Self-Aspirated Flotation Cells at Los Pelambres Concentrator
Abstract
:1. Introduction
2. Materials and Methods
2.1. Flotation Circuit Configuration at Los Pelambres
2.2. Gas Holdup Measurements
2.3. Axial Solid Profiles
2.4. Metallurgical Assessment
3. Results and Discussion
3.1. Single Cells Assessment
3.1.1. Hydrodynamic Conditions in Single Flotation Cells
3.1.2. Metallurgical Performance in Single Flotation Cells
3.2. Circuit Assessment
3.2.1. Overall Rougher Stage Performance
3.2.2. Size-by-Size Rougher Recoveries
4. Conclusions
- A restriction in air intake was viable in industrial self-aspirated machines. A consistent decrease in the gas holdup was observed when this intake was restricted. The air inlet obstruction was not regulated, and further developments are suggested on this subject.
- The air restriction in single WEMCO cells led to a better suspension of coarse particles and less diluted pulp below the pulp–froth interface, which agrees with results reported in the literature for forced-air machines. This operational improvement increased the concentrate grade and slightly increased Cu recovery at Los Pelambres concentrator.
- The implementation of an air restriction strategy in a bank of cells proved to be feasible. By restricting the air intake in eleven out of fourteen cells and in three rougher banks, Cu recovery increased by 0.9%–1.6% at a 95% confidence level in this stage.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
Average Gas Holdup for Banks C and D | ||
---|---|---|
Non-Restricted | Air-Restricted | Difference |
10.6% | 9.4% | −1.2% |
10.6% | 8.7% | −1.9% |
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Gas Holdup | ||||
---|---|---|---|---|
12% (Non-Resctricted) | 8% (Air Restricted) | |||
Solids (% w/w) | P80 (μm) | Solids (% w/w) | P80 (μm) | |
Concentrate | 11.4 | <38 | 48.4 | 61.7 |
Gas Holdup, % | ||||||
---|---|---|---|---|---|---|
11.0% | 7.0% | |||||
Solids, % | P80, μm | Cu Grade % | Solids, % | P80, μm | Cu Grade % | |
Feed | 33.2 | 125 | 0.11 | 33.8 | 130 | 0.11 |
Concentrate | 11.4 | 38 | 2.41 | 22.5 | 115 | 3.54 |
Tailings | 33.8 | 128 | 0.070 | 32.2 | 138 | 0.068 |
Cu Rec. % | 37.5 | 38.9 |
Average Gas Holdup for Banks C and D | ||
---|---|---|
Non-Restricted | Air-Restricted | Difference |
10.2% | 9.5% | −0.7% |
10.2% | 8.8% | −1.4% |
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Morales Gacitúa, M.; Maldonado Saavedra, M.; Vinnett, L. The Impact of Restricting Air Intake in Self-Aspirated Flotation Cells at Los Pelambres Concentrator. Minerals 2023, 13, 1375. https://doi.org/10.3390/min13111375
Morales Gacitúa M, Maldonado Saavedra M, Vinnett L. The Impact of Restricting Air Intake in Self-Aspirated Flotation Cells at Los Pelambres Concentrator. Minerals. 2023; 13(11):1375. https://doi.org/10.3390/min13111375
Chicago/Turabian StyleMorales Gacitúa, Michel, Miguel Maldonado Saavedra, and Luis Vinnett. 2023. "The Impact of Restricting Air Intake in Self-Aspirated Flotation Cells at Los Pelambres Concentrator" Minerals 13, no. 11: 1375. https://doi.org/10.3390/min13111375
APA StyleMorales Gacitúa, M., Maldonado Saavedra, M., & Vinnett, L. (2023). The Impact of Restricting Air Intake in Self-Aspirated Flotation Cells at Los Pelambres Concentrator. Minerals, 13(11), 1375. https://doi.org/10.3390/min13111375