A Brief Note on the Heap Leaching Technologies for the Recovery of Valuable Metals
Abstract
:1. Introduction
2. Heap Leaching of Mines
2.1. Heap Leaching Advantages and Economic factors
2.2. Heap Leaching of gold and silver
2.3. Heap Leaching of Copper
2.4. Heap Leaching of Uranium
3. Rare Earth Elements Recovery by Heap Leaching
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Method | Extraction Metal | Summary | Reference |
---|---|---|---|
Heap leaching | Precious metals from mineral fines | Leaching has been used principally in connection with low-grade copper ores or pit wastes. | Michael Kerr et al., 1998 [10] |
Heap leaching | Base metals from oxide ores | 75–82% of Nickel recovery was achieved in 160 days to 266 days, 90% Cobalt recovery was achieved in 14 days, Iron recovery (53.6%) was achieved in 198 days at ambient temperatures | Anthony et al., 2004 [11] |
Heap leaching | Zn (Zinc) | The 95% of zinc recovery was possible in 16 days cycle at 25°C by column (heap) leaching. | Wen-qing et al., 2007 [12] |
Heap leaching bio oxidation | Gold | 49–61% of gold was recovery by bio oxidation process at 81°C. The bio oxidation process was for gold recovery was taken 150 days. | Wes K. Sherlock 2010 [13] |
Heap leaching with computation process | Copper | 71–73.5% of copper was recovery by developed a new heap leaching methodology with the combining analytical modelling at optimal flow rates. | Mario E. Mellado et al., 2011 [14] |
Heap Leaching | Gold | 30–95% of gold was recovery by best available technology heap leaching compared to other techniques. | Caner Zanbak., 2012 [15] |
Heap leaching | Platinum group metals (PGMs) and base metals (BMs) from a low grade flotation concentrate of PGM concentrator plants. | The extractions of 52% Cu, 95% Ni and 85% Co were achieved in 30 days (65°C) by heap bioleach. If cyanide leach process (23°C) can be operated in 21 days, 20.3% Pt, 87% Pd and 46% Rh, if 50 days or more to achieve 50% platinum. | Mwase et al., 2012 [16] |
Sequential heap leaching | Platinum group metals and particularly for palladium | At 65 °C, 93% Copper, 75% Ni and 53% Co extracted by bio heap leaching in the 304 days. By cyanide leach experiment, 57.8% Pt, 99.7% Pd and 90.3% Au was extracted at 50°C in 60 days. | Mwase et al., 2014 [17] |
Heap leaching with mathematical modeling | copper | By the Mellado et al., method for the optimal design of heap leaching, 53–56% copper recovery was possible in a61–67 days. | Jorcy Y. Trujillo et al., 2014 [18] |
Heap bioleaching | Cu, metal extracted from reduced inorganic sulfur compounds. | Over 60% of Cu, extraction was possible by bio heap leaching at 45 °C during the 30 –48 days. | Watling et al., 2015 [19] |
Heap leaching | Copper from ore | 73% of Cu recovery was achieved in 140 days at 25 °C. | Rautenbach, 2015 [22] |
Heap leaching for rare earths extraction | Heavy rare earths and Yttrium | 91.3% and 87.2% of Yttrium and dysprosium achieved by heap leaching for60 days, respectively, at room temperatures. | Pingitore Nicholas et al., 2016 [23] |
Heap leaching with increasing flux rate | Gold | 73–87% of gold extraction was achieved by using heap leach process with increasing flux rate in the 40 to60 days. | Ngantung, 2017 [24] |
Heap leaching with the new model (MINLP) and GAMS software | Copper | 69.7–76.7% of copper recovery was obtained from 19.5–43.5 days with the new mathematical modeling named mixed integer nonlinear programming (MINLP) including GAMS software (general algebraic modeling system). | Isis F. Hernández et al., 2017 [27] |
Heap bioleaching | Nickel | 60% recovery of nickel from the tailings for 110 days. | Anton Svetlov et al., 2017 [28] |
Heap leaching with computational fluid dynamics model | Copper | 55% of copper was recovered in the 700 days cycle at the temperatures from 12–45°C. | Diane McBride et al., 2018 [29] |
Metal Name | Heap Leaching Capital Expenditure (CAPEX)US$/t ore | Heap Leaching Operating Expenditure (OPEX) US$/t ore | Tank Leaching Capital Expenditure (CAPEX)US$/t ore | Tank Leaching Operating Expenditure (OPEX) US$/t ore | Autoclave Leaching Capital Expenditure (CAPEX)US$/t ore | Autoclave Leaching Operating Expenditure (OPEX)US$/t ore |
---|---|---|---|---|---|---|
Copper | 29.5 | 4.6 | 25 | 66 | 75 | 19 |
Gold | 22 | 4.51 | 40.9 | 22.28 | 492 | 8.20 |
Silver | 22.50 | 14.87 | 40.9 | 35.96 | 17.40 | 82 |
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Thenepalli, T.; Chilakala, R.; Habte, L.; Tuan, L.Q.; Kim, C.S. A Brief Note on the Heap Leaching Technologies for the Recovery of Valuable Metals. Sustainability 2019, 11, 3347. https://doi.org/10.3390/su11123347
Thenepalli T, Chilakala R, Habte L, Tuan LQ, Kim CS. A Brief Note on the Heap Leaching Technologies for the Recovery of Valuable Metals. Sustainability. 2019; 11(12):3347. https://doi.org/10.3390/su11123347
Chicago/Turabian StyleThenepalli, Thriveni, Ramakrishna Chilakala, Lulit Habte, Lai Quang Tuan, and Chun Sik Kim. 2019. "A Brief Note on the Heap Leaching Technologies for the Recovery of Valuable Metals" Sustainability 11, no. 12: 3347. https://doi.org/10.3390/su11123347
APA StyleThenepalli, T., Chilakala, R., Habte, L., Tuan, L. Q., & Kim, C. S. (2019). A Brief Note on the Heap Leaching Technologies for the Recovery of Valuable Metals. Sustainability, 11(12), 3347. https://doi.org/10.3390/su11123347