Extraction of Mn from Black Copper Using Iron Oxides from Tailings and Fe2+ as Reducing Agents in Acid Medium
Abstract
:1. Introduction
2. Methodology
2.1. Black Oxide Samples
2.2. Ferrous Ions
2.3. Iron Oxide Tailings
2.4. Reagent and Leaching Test
2.5. The Effect of the Fe/MnO2 Ratio
2.6. The Effect of the Acid Concentration on the System
3. Results
3.1. The Effect of the Fe2+/MnO2 Ratio
3.2. The Effect of the Fe2O3/MnO2 Ratio
3.3. The Effect of the H2SO4 Concentration
4. Conclusions
- (1)
- The ferrous ions were a better reducing agent than iron oxides to dissolve MnO2 in black copper.
- (2)
- The optimal reducing agent/black copper ratio was 2:1 for the studied reducing agents studied.
- (3)
- High concentrations of H2SO4 had a positive effect on the dissolution of Mn with the BCS-2 sample owing to the high content of clay (montmorillonite and kaolinite) and gangue (chlorite), which consume significant amounts of acid. The acid concentration was not significant with the BCS-1 sample.
- (4)
- The best results in this study were obtained working with the sample with fewer impurities (BCS-1), with an Fe2+/black copper ratio of 2:1, and 1 mol/L of sulfuric acid.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Sample | Mn (%) | Fe (%) |
---|---|---|
Black Copper Sample-1 | 22.01 | 7.92 |
Black Copper Sample-2 | 0.51 | 3.88 |
Mineral (% Mass) | Black Copper Sample-1 | Black Copper Sample-2 |
---|---|---|
Native Cu/Cuprite/Tenorite | 0.12 | 0.00 |
Cu-Mn Wad | 78.90 | 4.64 |
Chrysocolla | 16.72 | 0.03 |
Other Cu Minerals | 2.69 | 0.03 |
Pyrite | 0.00 | 0.01 |
Goethite | 0.01 | 2.39 |
Other Fe Oxides/Sulphates | 0.00 | 3.15 |
Quartz | 1.41 | 30.20 |
Feldspars | 0.02 | 35.11 |
Kaolinite Group | 0.01 | 7.08 |
Muscovite/Sericite | 0.01 | 0.67 |
Chlorite/Biotite | 0.01 | 4.45 |
Montmorillonite | 0.00 | 4.56 |
Others | 0.09 | 7.35 |
Total | 100 | 100 |
Mineral | Amount % (w/w) |
---|---|
Chalcopyrite/Bornite | 0.47 |
Tennantite/Tetrahedrite | 0.03 |
Other Cu Minerals | 0.63 |
Cu–Fe Hydroxides | 0.94 |
Pyrite | 0.12 |
Magnetite | 58.52 |
Specular Hematite | 0.89 |
Hematite | 4.47 |
Ilmenite/Titanite/Rutile | 0.04 |
Siderite | 0.22 |
Chlorite/Biotite | 3.13 |
Other Phyllosilicates | 11.61 |
Fayalite | 4.59 |
Dicalcium Silicate (Si) | 8.30 |
Kirschsteinite (CaFeSi) | 3.40 |
Forsterite (Si) | 2.30 |
Barite (BaSO4) | 0.08 |
Zinc Oxide (ZnO) | 0.02 |
Lead Oxide (PbO) | 0.01 |
Sulfate (S) | 0.20 |
Others | 0.03 |
Total | 100.00 |
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Pérez, K.; Toro, N.; Campos, E.; González, J.; Jeldres, R.I.; Nazer, A.; Rodriguez, M.H. Extraction of Mn from Black Copper Using Iron Oxides from Tailings and Fe2+ as Reducing Agents in Acid Medium. Metals 2019, 9, 1112. https://doi.org/10.3390/met9101112
Pérez K, Toro N, Campos E, González J, Jeldres RI, Nazer A, Rodriguez MH. Extraction of Mn from Black Copper Using Iron Oxides from Tailings and Fe2+ as Reducing Agents in Acid Medium. Metals. 2019; 9(10):1112. https://doi.org/10.3390/met9101112
Chicago/Turabian StylePérez, Kevin, Norman Toro, Eduardo Campos, Javier González, Ricardo I. Jeldres, Amin Nazer, and Mario H. Rodriguez. 2019. "Extraction of Mn from Black Copper Using Iron Oxides from Tailings and Fe2+ as Reducing Agents in Acid Medium" Metals 9, no. 10: 1112. https://doi.org/10.3390/met9101112