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Numerical study on the particle distribution of coal for recovery of critical metalsNumerical study on the particle distribution of coal for recovery of critical metals

Other Titles
Numerical study on the particle distribution of coal for recovery of critical metals
Authors
Jha, Vandana Kumari
Issue Date
Sep-2023
Publisher
Taylor and Francis Ltd.
Keywords
Coal; critical metals; helical domain; particle distribution; particle tracing
Citation
Geosystem Engineering, v.26, no.5, pp 250 - 256
Pages
7
Indexed
SCOPUS
ESCI
KCI
Journal Title
Geosystem Engineering
Volume
26
Number
5
Start Page
250
End Page
256
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/59552
DOI
10.1080/12269328.2023.2213264
ISSN
1226-9328
2166-3394
Abstract
Coal is considered to be a significant resource of critical metals and minerals. Recovery of these critical metals is considered to be highly important in terms of advancement and technology. This paper presents a numerical study of the particle size distribution of coal and its impact on the recovery of critical metals. This study uses the computational fluid dynamics (CFD) model to simulate the transport and deposition of coal particles inside a helical domain, which can be used as a device for separating particles. The numerical study, based on the particle tracing model for fluid flow and particle tracing, is used to simulate the behavior of coal particles in a slurry under different flow conditions. The transient study for a six-turn helical coil domain is analyzed for different flow velocities ranging from (Formula presented.). The simulation results show that the particle size distribution of coal plays a crucial role in the recovery of critical metals. Additionally, the distribution of critical metals inside the domain varies with the size and density of the particles. It is observed that increasing the fluid velocity can significantly increase the recovery of critical metals. Finally, the transmission probability of particles remaining trapped inside the domain is also calculated, which could help in optimizing the helical geometry so that all the particles could come out of the flowing conduit. The number of particles coming out of the helical domain increases with the increase in flow rate. The results of the study show that the particle size distribution of coal plays a significant role in the recovery of critical metals. The findings can help guide the development of more efficient and cost-effective methods for extracting critical metals from coal. © 2023 The Korean Society of Mineral and Energy Resources Engineers (KSMER).
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