Oxidative acid leaching behavior of Fe–Ni–Co alloy powder derived from a laterite ore
Meishi Hu , Jing Chen , Mingjun Rao , Siyu Chen , Jun Luo , Guanghui Li , Tao Jiang
International Journal of Minerals, Metallurgy, and Materials ›› 2025, Vol. 32 ›› Issue (4) : 825 -834.
Oxidative acid leaching behavior of Fe–Ni–Co alloy powder derived from a laterite ore
The demand for Ni and Co has surged due to the rapid expansion of the electric vehicle industry. Thus, developing efficient and eco-friendly metallurgical routes for extracting these metals has become imperative. This study introduces a sustainable and effective method for extracting Ni and Co from Ni–Co–Fe alloy powder obtained from limonitic laterite ores through selective reduction and magnetic separation. The leaching efficiency for Ni, Co, and Fe was 89.4%, 94.8%, and 96.5%, respectively, under the following conditions for leaching: 3 mol/L H2SO4, 85°C, 10 mL/g liquid–solid ratio, and 90 min leaching time. The incorporation of H2O2 enhanced the leaching efficiency for Ni, Co, and Fe. The redox potential of the solution plays a crucial role in acid dissolution, and H2O2 enhances Ni and Co dissolution. Phosphate precipitation facilitated the removal of Fe from the leachate, affording a 96.1% Fe removal ratio and 2.29% Ni loss.
Ni–Co–Fe alloy powder / atmospheric acid leaching / oxidation–reduction potential of solution / laterite ore
| [1] |
X.T. Sun, W. Fang, X.Y. Gao, S.F. An, S.Y. Liu, and T. Wu, Time-varying causality inference of different nickel markets based on the convergent cross mapping method, Resour. Policy, 74(2021), art. No. 102385. |
| [2] |
J.W. Han, Y.W. Wang, X.H. Mao, X.J. Chang, H.B. Zeng, and W.Q. Qin, Efficient extraction of nickel from sintered alloy by stepwise leaching: Thermodynamic and kinetic studies, Miner. Eng., 187(2022), art. No. 107776. |
| [3] |
|
| [4] |
|
| [5] |
|
| [6] |
M.L.C.M. Henckens and E. Worrell, Reviewing the availability of copper and nickel for future generations. The balance between production growth, sustainability and recycling rates, J. Cleaner Prod., 264(2020), art. No. 121460. |
| [7] |
M.B. Ananda, I.G.N.D. Vidathya, M. Ramadhani, F. Abdul, and S. Pintowantoro, Effect of the pH with NaOH additives on the precipitation process of ferronickel leaching products from mini blast furnaces for NiSO4·6H2O synthesis, Sādhanā, 49(2023), No. 1, art. No. 8. |
| [8] |
U.S. Geological SurveyMineral Commodity Summaries 2023, 2023Reston, VA |
| [9] |
International Nickel Study GroupThe World Nickel Factbook 2021, 2022 |
| [10] |
|
| [11] |
|
| [12] |
|
| [13] |
|
| [14] |
|
| [15] |
|
| [16] |
T. Gultom and A. Sianipar, High pressure acid leaching: A newly introduced technology in Indonesia, IOP Conf. Ser. Earth Environ. Sci., 413(2020), No. 1, art. No. 012015. |
| [17] |
SherrittDoes Matte Matter? Is Nickel Pig Iron the Answer to EV Battery Demand?, 2021[2021-09-16] |
| [18] |
Y.W. Wang, X.J. Chang, M.J. Chen, W.Q. Qin, and J.W. Han, Effective extraction of nickel and cobalt from sintered nickel alloy via reduction roasting and leaching, Miner. Eng., 203(2023), art. No. 108336. |
| [19] |
|
| [20] |
|
| [21] |
M.J. Rao, J. Chen, T. Zhang, M.S. Hu, J.X. You, and J. Luo, Atmospheric acid leaching of powdery Ni–Co–Fe alloy derived from reductive roasting of limonitic laterite ore and recovery of battery grade iron phosphate, Hydrometallurgy, 218(2023), art. No. 106058. |
| [22] |
|
| [23] |
|
University of Science and Technology Beijing
/
| 〈 |
|
〉 |