| Literature DB >> 35994466 |
Deji Jing1,2,3, Hongwei Liu1,2,3, Tian Zhang1,2,3, Shaocheng Ge4, Shuaishuai Ren1,2,3, Mingxing Ma1,2,3.
Abstract
In order to solve the problem of coal dust pollution at the transfer point, a three-dimensional numerical model of wind flow-coal dust at the loading point of underground rubber run was established by computational fluid dynamics (CFD) discrete particle model and finite element method and k-ε turbulence model, and the coal dust diffusion pollution phenomenon caused by the coal flow transfer under the intersection of wind flow in the cross tunnel was studied. Based on the simulation results of wind flow velocity contour, pressure contour and isochronous flow vector distribution, the influence mechanism of wind flow and coal dust characteristics on the distribution of wind flow and coal dust diffusion in the roadway is analysed, and a dust control and reduction system and treatment scheme with new pneumatic screw spray technology as the core is proposed to suppress coal dust pollution at the reloading point. The results of the study show that the wind flow distribution is mainly influenced by the intersection of tape traction and cross-roadway wind flow, showing a complex multi-layer distribution along the roadway and in the normal direction; the diffusion of coal dust of different particle sizes is influenced by the roadway wind flow, and coal dust with particle sizes in the range of 10μm~20μm is more easily diffused, and the dust with particle sizes in the range of 20μm~45μm is mainly collected and suspended near the vortex wind flow at the cross-roadway. The coal dust in the range of 20 μm~45 μm is more likely to gather in the vortex; the treatment system effectively controls the coal dust inside the dust cover, and the spiral-shaped transported droplet particle group formed by the pneumatic spiral spray combines with it efficiently, which verifies the dust control and reduction effect of the pneumatic spiral spray system at the transfer point, and the dust removal efficiency reaches 89.35%~93.06%, which provides relevant theoretical support for the treatment of dust pollution at the coal transfer point in underground coal mines It provides the theoretical support and means to control dust pollution at underground coal transfer points.Entities:
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Year: 2022 PMID: 35994466 PMCID: PMC9394847 DOI: 10.1371/journal.pone.0272304
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.752
Fig 1Physical model of the transfer point.
Fig 2Reprint point model grid diagram.
Fig 3Installation of pneumatic screw spray and dust removal device.
Fig 4Model drawing of spiral nozzle.
Boundary conditions and parameter values.
| Project | Name | Parameter setting |
|---|---|---|
| Boundary condition | Lower lane inlet air velocity (m/s) | 0.2 |
| Upper lane inlet air velocity (m/s) | 0.15 | |
| Outlet pressure (pa) | 0 | |
| Air density(kg/m3) | 1.25 | |
| Dust source parameters | Continuous-phase dynamic viscosity (Pa·s) | 1.8×10–5 |
| Molecular diffusion coefficient of gas (m2/s-1) | 2×10–5 | |
| Density of particles themselves (g/cm3) | 1.33 | |
| Number of entry particles | 1000 | |
| Max particle size of dust (m) | 3.16e-6 | |
| Min particle size of dust (m) | 1.43e-5 | |
| Droplet source parameters | Nozzle flow rate (L/min) | 11.5 |
| Initial velocity (m/s) | 8 | |
| Half angle of atomization (°) | 40 |
Fig 5Structure diagram of pneumatic spiral nozzle.
Fig 6Experimental results of spray dustfall.
Fig 7Lower lane upwind coal transfer velocity distribution diagram.
Fig 8Wind flow distribution curve in the centre of the lower lane.
Fig 9Wind flow distribution characteristics and wind flow line trajectory.
Fig 10Diffusion pollution range of coal dust with different particle sizes.
Fig 11Simulation of velocity field of spiral spray.
Fig 12Spiral pneumatic spray fog drip particle trajectory.
Contrast of respiratory coal dust concentration before and after comprehensively controlling.
| serial number | Measurement point name | Treatment, frontal coal dust concentration/(mg/m3) | Governing coal dust concentration/(mg/m3) | Dust reduction efficiency/% | Respiratory dust concentration before governance/(mg/m3) | Respiratory dust concentration after treatment/(mg/m3) | Dust reduction efficiency/% |
|---|---|---|---|---|---|---|---|
| 1 | Transfer point upper roadway upper wind side 3m | 6.84 | 4.13 | 39.62 | 2.21 | 1.98 | 10.41 |
| 2 | Dressing point lower roadway upper wind side 5m | 2.04 | 1.52 | 25.51 | 0.62 | 0.53 | 14.52 |
| 3 | Reploquette lower wind side 2M | 53.57 | 3.58 | 93.31 | 12.87 | 1.14 | 91.15 |