Research on Enhancing Copper-Ammonia-Thiosulfate Eco-Friendly Gold Leaching by Magnetization of Lixiviant Solution and Their Kinetic Mechanism
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Reagents
2.2. Experiments
2.2.1. Magnetization of Lixiviant Solution
2.2.2. Column Leaching
2.2.3. Leaching Rate Test Based on QCM-D
2.2.4. Contact Angle Test by Washburn Method
2.3. Analytical Methods
3. Results and Discussion
3.1. Lixiviant Solution Magnetization
3.1.1. Surface Tension
3.1.2. DO
3.2. Mechanism
3.2.1. Contact Angle
3.2.2. Chemical Reactivity
3.2.3. Leaching Rate
3.2.4. Contact Angle
3.3. Column Leaching
4. Conclusions
- (1)
- Under optimized conditions including a magnetic field strength of 1.5 T, magnetization time of 5 min, and liquid flow rate of 1000 mL/min, the surface tension of sodium thiosulphate lixiviant solution decreased by 3.71 mN/m, representing a 5.5% reduction. Magnetization can increase the dissolved oxygen in the sodium thiosulphate lixiviant solution by up to 38%.
- (2)
- The magnetization treatment significantly improved the infiltration characteristics of the leaching solution on gold ore, reducing the contact angle from 75.54° to 73.24°. Moreover, it enhanced the reactivity of copper-ammonia complexes and improved the leaching reaction. Based on QCMD leaching rate tests, the magnetization treatment increased the reaction rate of copper-ammonia sodium thiosulphate leaching from 1561.39 ng/cm2-min to 1637.53 ng/cm2-min, a 4.88% increase.
- (3)
- Leaching kinetics studies reveal that the reaction rate of gold leaching with sodium copper-ammonia thiosulphate is determined by external diffusion and chemical reaction processes. Magnetization improves the infiltration characteristics of the leaching solution, aiding the diffusion of molecules/ions onto gold surfaces and enhancing external diffusion rates. Additionally, it boosts the activity of copper-ammonia complexes and DO in the leaching solution, thereby improving the chemical reaction process of gold leaching. Hence, magnetization treatment effectively increases the leaching reaction rate, although further research is needed to elucidate the detailed mechanisms, particularly regarding the enhancement of copper-ammonia complex activity post-magnetization.
- (4)
- Magnetization significantly enhanced heap leaching with copper-ammonia sodium thiosulphate, increasing the leaching rate by approximately 0.6%. The reaction rate in the early stage is primarily driven by external diffusion and chemical reaction processes, with bare gold as the primary reactant. In the middle and late stages, the increase in leaching reaction by-products obstructs the external diffusion process, leading to a sharp decrease in reaction rate. The cumulative extraction rate for the copper-ammonia sodium thiosulphate magnetized group reached 47.27%, with magnetization treatment enhancing the gold leaching rate by 4.74% and 3.67% compared to the blank control group and cyanide leaching, respectively, indicating the potential of magnetization treatment in promoting the industrial use of sodium thiosulphate as an alternative to cyanide for gold leaching.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Gold Phase | Gross Gold | Bare and Semi-Bare Gold | Carbonate-Encapsulated Gold | Sulfides-Encapsulated Gold | Hematite-Encapsulated Gold | Quartz and Silicates-Encapsulated Gold |
---|---|---|---|---|---|---|
Content (g/t) | 0.48 | 0.31 | 0.13 | <0.1 | <0.1 | <0.1 |
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Liu, Z.; Kou, J.; Fan, L.; Zhang, W.; Tian, J.; Sun, C.; Li, Q.; Liu, J.; Xing, C.; Li, G. Research on Enhancing Copper-Ammonia-Thiosulfate Eco-Friendly Gold Leaching by Magnetization of Lixiviant Solution and Their Kinetic Mechanism. Minerals 2024, 14, 697. https://doi.org/10.3390/min14070697
Liu Z, Kou J, Fan L, Zhang W, Tian J, Sun C, Li Q, Liu J, Xing C, Li G. Research on Enhancing Copper-Ammonia-Thiosulfate Eco-Friendly Gold Leaching by Magnetization of Lixiviant Solution and Their Kinetic Mechanism. Minerals. 2024; 14(7):697. https://doi.org/10.3390/min14070697
Chicago/Turabian StyleLiu, Zhengyu, Jue Kou, Lipeng Fan, Weibin Zhang, Jie Tian, Chunbao Sun, Qiang Li, Jiubo Liu, Chengjun Xing, and Guanhua Li. 2024. "Research on Enhancing Copper-Ammonia-Thiosulfate Eco-Friendly Gold Leaching by Magnetization of Lixiviant Solution and Their Kinetic Mechanism" Minerals 14, no. 7: 697. https://doi.org/10.3390/min14070697
APA StyleLiu, Z., Kou, J., Fan, L., Zhang, W., Tian, J., Sun, C., Li, Q., Liu, J., Xing, C., & Li, G. (2024). Research on Enhancing Copper-Ammonia-Thiosulfate Eco-Friendly Gold Leaching by Magnetization of Lixiviant Solution and Their Kinetic Mechanism. Minerals, 14(7), 697. https://doi.org/10.3390/min14070697