Influence of longwall gateroad convergence on the process of mine ventilation network-model tests
Hard coal mines are required to constantly ventilate mine workings to ensure that the air composition is at a certain humidity and temperature level that is comfortable for underground mine workers, especially in deep deposits. All underground workings, which are part of the mine ventilation network...
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doaj-630a4d739080482f8f71016a550bed3b2020-11-24T21:20:18ZengElsevierInternational Journal of Mining Science and Technology2095-26862019-07-01294585590Influence of longwall gateroad convergence on the process of mine ventilation network-model testsAndrzej Walentek0Tomasz Janoszek1Stanisław Prusek2Aleksander Wrana3Department of Extraction Technologies, Rockburst and Mining Support, Central Mining Institute, 40-166 Katowice, PolandDepartment of Extraction Technologies, Rockburst and Mining Support, Central Mining Institute, 40-166 Katowice, Poland; Corresponding author.Central Mining Institute, 40-166 Katowice, PolandDepartment of Extraction Technologies, Rockburst and Mining Support, Central Mining Institute, 40-166 Katowice, PolandHard coal mines are required to constantly ventilate mine workings to ensure that the air composition is at a certain humidity and temperature level that is comfortable for underground mine workers, especially in deep deposits. All underground workings, which are part of the mine ventilation network, should be ventilated in a way that allows maintaining proper oxygen concentration not lower than 19% (by volume), and limits concentration of gases in the air such as methane, carbon monoxide or carbon dioxide. The air flow in the mine ventilation network may be disturbed due to the natural convergence (deformation) and lead to change in its original cross-section. Reducing the cross-sectional area of the mining excavation causes local resistances in the air flow and changes in aerodynamic potentials, which leads to emergency states in the mine ventilation network. This paper presents the results of numerical simulations of the influence of gateroad convergence on the ventilation process of a selected part of the mine ventilation network. The gateroad convergence was modelled with the finite element software PHASE 2. The influence of changes in the cross-sectional area of the gateroad on the ventilation process was carried out using the computational fluid dynamics software Ansys-Fluent. Keywords: Geomechanics, Convergence, Numerical modelling, Ventilation process, Supporthttp://www.sciencedirect.com/science/article/pii/S209526861930285X |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Andrzej Walentek Tomasz Janoszek Stanisław Prusek Aleksander Wrana |
spellingShingle |
Andrzej Walentek Tomasz Janoszek Stanisław Prusek Aleksander Wrana Influence of longwall gateroad convergence on the process of mine ventilation network-model tests International Journal of Mining Science and Technology |
author_facet |
Andrzej Walentek Tomasz Janoszek Stanisław Prusek Aleksander Wrana |
author_sort |
Andrzej Walentek |
title |
Influence of longwall gateroad convergence on the process of mine ventilation network-model tests |
title_short |
Influence of longwall gateroad convergence on the process of mine ventilation network-model tests |
title_full |
Influence of longwall gateroad convergence on the process of mine ventilation network-model tests |
title_fullStr |
Influence of longwall gateroad convergence on the process of mine ventilation network-model tests |
title_full_unstemmed |
Influence of longwall gateroad convergence on the process of mine ventilation network-model tests |
title_sort |
influence of longwall gateroad convergence on the process of mine ventilation network-model tests |
publisher |
Elsevier |
series |
International Journal of Mining Science and Technology |
issn |
2095-2686 |
publishDate |
2019-07-01 |
description |
Hard coal mines are required to constantly ventilate mine workings to ensure that the air composition is at a certain humidity and temperature level that is comfortable for underground mine workers, especially in deep deposits. All underground workings, which are part of the mine ventilation network, should be ventilated in a way that allows maintaining proper oxygen concentration not lower than 19% (by volume), and limits concentration of gases in the air such as methane, carbon monoxide or carbon dioxide. The air flow in the mine ventilation network may be disturbed due to the natural convergence (deformation) and lead to change in its original cross-section. Reducing the cross-sectional area of the mining excavation causes local resistances in the air flow and changes in aerodynamic potentials, which leads to emergency states in the mine ventilation network. This paper presents the results of numerical simulations of the influence of gateroad convergence on the ventilation process of a selected part of the mine ventilation network. The gateroad convergence was modelled with the finite element software PHASE 2. The influence of changes in the cross-sectional area of the gateroad on the ventilation process was carried out using the computational fluid dynamics software Ansys-Fluent. Keywords: Geomechanics, Convergence, Numerical modelling, Ventilation process, Support |
url |
http://www.sciencedirect.com/science/article/pii/S209526861930285X |
work_keys_str_mv |
AT andrzejwalentek influenceoflongwallgateroadconvergenceontheprocessofmineventilationnetworkmodeltests AT tomaszjanoszek influenceoflongwallgateroadconvergenceontheprocessofmineventilationnetworkmodeltests AT stanisławprusek influenceoflongwallgateroadconvergenceontheprocessofmineventilationnetworkmodeltests AT aleksanderwrana influenceoflongwallgateroadconvergenceontheprocessofmineventilationnetworkmodeltests |
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