Simulation of an Ionic Rare Earth Leaching Process Based on the Darcy Law-Chemical Reaction Engineering-Transfer of Dilute Substance Coupling
Abstract
:1. Introduction
2. Theory and Mathematical Model
3. Test Stope Strata Overview
- (1)
- Topsoil layer: humus soil is gray black or gray green with a loose structure; sub-clay soil, sub-sandy soil, and humus soil can be seen with a soil thickness of 0.1–0.4 mm. Beneath the humus is a red clay layer with some granite, quartz, and other debris, about 0.4–2.0 m thick. On the whole, the thickness of the topsoil is thinner on the ridge and side of the mountain. The thickness of the topsoil on the slope body is 0.1–0.6 m and that on the foot of the mountain is 1–2 m.
- (2)
- Completely weathered layer: the thickness of the completely weathered layer is more than 10 m, which is brick red, yellowish brown, earth yellow, and a small amount of the mineral soil is grayish white with a uniform texture and a loose structure, leading to the decomposition of rock minerals. The quartz particle size is generally 2–6 mm, and some is 1–1.5 mm, which is gray white. Most of the biotite has iron precipitation, and some had been converted to muscovite by rock alteration. Microfractures are well developed and often filled with clay minerals. The thickness of the upper and lower parts of the mountain is larger, and the thickness of the soil layer at the foot of the mountain is thinner. The ion phase grade of rare earth ions is in the range of 0.007%–0.103%, mainly distributed under the middle, upper, and surface soil, and the thickness is about 5 m. The thickness of the completely weathered layer is relatively large, the distribution is relatively loose, the weathered layer has many cracks, and the rock is broken. When site leaching is carried out, once the groundwater and surface water accumulate on the slope, slope instability may occur, resulting in collapses and landslides.
- (3)
- Granite layer: the thickness of the granite layer is not clear; its color, texture, and structural characteristics are similar to those of the original rock. It is relatively soft, slightly massive, and it is difficult to turn it into powder by hand kneading. The feldspar is mainly of broken grain structure, and some of it has also developed into kaolin. The width of the crack is about 1 mm with iron as the main fissure filling. The number of pieces of the original rock not weathered has increased.
4. Model Establishment and Boundary Conditions
5. Results and Discussion
5.1. Analysis of Saturated Flow Field of Ionic Rare Earth Ore
5.2. Analysis of Rare Earth Ion Leaching under Multi-Field Coupling
5.3. Analysis of Magnesium Ion Migration under Multi-Field Coupling
6. Conclusions
- (1)
- The leaching numerical model of the rare earth stope was constructed, and the leaching process of rare earth was simulated according to the designed injection strength by adopting the above-optimum MgSO4 concentration. By analyzing the steady-state saturated seepage field, the importance of the liquid injection sequence was verified, and the scientific experience of liquid injection from the top to the bottom of the mountain was demonstrated.
- (2)
- The leaching process of rare earth was simulated by coupling ion exchange reactions, and the migration process of rare earth ions and Mg2+ in the stope was analyzed. The cutoff time for leaching was determined according to the cloud map of the Mg2+ migration profile and the time–history curve of the Mg2+ concentration in the stope.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Wang, D.; Wu, F.; Rao, Y.; Xu, W.; Han, M.; Shi, L. Simulation of an Ionic Rare Earth Leaching Process Based on the Darcy Law-Chemical Reaction Engineering-Transfer of Dilute Substance Coupling. Minerals 2022, 12, 1500. https://doi.org/10.3390/min12121500
Wang D, Wu F, Rao Y, Xu W, Han M, Shi L. Simulation of an Ionic Rare Earth Leaching Process Based on the Darcy Law-Chemical Reaction Engineering-Transfer of Dilute Substance Coupling. Minerals. 2022; 12(12):1500. https://doi.org/10.3390/min12121500
Chicago/Turabian StyleWang, Dan, Fuyu Wu, Yunzhang Rao, Wei Xu, Min Han, and Liang Shi. 2022. "Simulation of an Ionic Rare Earth Leaching Process Based on the Darcy Law-Chemical Reaction Engineering-Transfer of Dilute Substance Coupling" Minerals 12, no. 12: 1500. https://doi.org/10.3390/min12121500
APA StyleWang, D., Wu, F., Rao, Y., Xu, W., Han, M., & Shi, L. (2022). Simulation of an Ionic Rare Earth Leaching Process Based on the Darcy Law-Chemical Reaction Engineering-Transfer of Dilute Substance Coupling. Minerals, 12(12), 1500. https://doi.org/10.3390/min12121500