Estimation of aeration time in blind excavations: Methodological approach based on 3D numerical modeling
The paper presents the results on 3D numerical modeling of ventilation in blind excavations of different length under the fixed transverse section due to turbulent diffusion. Aerodynamic characteristics have been calculated using the standard (k – ε)-model of turbulence. The ventilation in an exca...
Main Authors: | , |
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Format: | Article |
Language: | Russian |
Published: |
Murmansk State Technical University
2017-03-01
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Series: | Vestnik MGTU |
Online Access: | http://vestnik.mstu.edu.ru/show-eng.shtml?art=1843&pdf=1 |
Summary: | The paper presents the results on 3D numerical modeling of ventilation in blind excavations of different length
under the fixed transverse section due to turbulent diffusion. Aerodynamic characteristics have been calculated
using the standard (k – ε)-model of turbulence. The ventilation in an excavation has been simulated by numerical
solution of a convectional-diffusion equation of admixture transfer. Numerical experiments of ventilation a blind
excavation with 10–20 m length have been performed for range of air consumption in a through excavation from
6.25 to 50 m3
/sec. Initial contamination of the atmosphere in the blind excavation has been taken in the range of
15–25 MPC (in nitric oxides). For boundary conditions observed there have been received spatial distributions of
the velocity field and coefficients of turbulent viscosity in the excavation's length. The authors have revealed
significant heterogeneity of the velocity field in the blind excavation and low values of velocity vector's
components close to a face; this leads the turbulent diffusion mechanism to a prevailing position in the admixture
dispersion. The paper presents examples of admixture distribution in excavations' space at the moment of the
MPC level achievement in the blind excavation depending on the values of the model's varying parameters. It
has been established that the ventilation time under otherwise equal conditions depends significantly on amount
of air supplied to the main excavation. It has been shown that at initial and boundary conditions adopted the
forecast of ventilation time for blind excavations through the turbulent diffusion mechanism can be performed
based on integrated analytic correlation with such arguments as excavation length, air consumption and initial
level of gas contamination. The analysis of numerical test results performed on the basis of 3D models designed
has shown that the blind excavations with length more 10 m where stoping operations are running can be
ventilated due to the turbulent diffusion mechanism. Time of the blind excavation ventilation in dependence of
gases concentration in it can reach more than two hours in dependence of volume of air supplied in a through
excavation. |
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ISSN: | 1560-9278 1997-4736 |