Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth

Many dynamic disasters such as coal wall caving and roof falling have happened during longwall face crossing fault. Combined with the coal seam geological conditions in the 1302 longwall face AB coal mine, the paper comprehensively studies the overlying strata movement and the stress evolution laws...

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Main Authors: Fangtian Wang, Qi Ma, Cun Zhang, Guangming Feng
Format: Article
Language:English
Published: Taylor & Francis Group 2020-01-01
Series:Geomatics, Natural Hazards & Risk
Subjects:
Online Access:http://dx.doi.org/10.1080/19475705.2020.1763482
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author Fangtian Wang
Qi Ma
Cun Zhang
Guangming Feng
author_facet Fangtian Wang
Qi Ma
Cun Zhang
Guangming Feng
author_sort Fangtian Wang
collection DOAJ
description Many dynamic disasters such as coal wall caving and roof falling have happened during longwall face crossing fault. Combined with the coal seam geological conditions in the 1302 longwall face AB coal mine, the paper comprehensively studies the overlying strata movement and the stress evolution laws of stope during superhigh-water material (SHWM) backfilling longwall face across fault by UDEC numerical simulation, theoretical analysis and on-site measurement. The results show that the stress during stable state is affected by the fault will increases abnormally. While the longwall face pass through the fault, the stress will abated and the vertical displacement of the overlying strata of two sides of the fault is significantly different. The fault significant blocks the propagation of stress and development of plastic zone. The superhigh-water material filling mining management roof has good protection effect on the roof when the longwall face encounters fault, which can effectively weaken the blocks effect of fault on stress propagation and plastic zone development. The numerical simulation results are consistent with the field experiments, and the research result provides theoretical basis and technical guidance for safe and efficient production during superhigh-water material backfilling longwall face through the fault.
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spelling doaj.art-ca73e5ddd0eb4cfa954fe47e4aa8de8b2022-12-21T20:48:04ZengTaylor & Francis GroupGeomatics, Natural Hazards & Risk1947-57051947-57132020-01-0111194996610.1080/19475705.2020.17634821763482Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depthFangtian Wang0Qi Ma1Cun Zhang2Guangming Feng3Jiangsu Engineering Laboratory of Mine Earthquake Monitoring and Prevention; School of Mines, China University of Mining & TechnologyJiangsu Engineering Laboratory of Mine Earthquake Monitoring and Prevention; School of Mines, China University of Mining & TechnologySchool of Energy and Mining Engineering, China University of Mining and Technology (Beijing)Jiangsu Engineering Laboratory of Mine Earthquake Monitoring and Prevention; School of Mines, China University of Mining & TechnologyMany dynamic disasters such as coal wall caving and roof falling have happened during longwall face crossing fault. Combined with the coal seam geological conditions in the 1302 longwall face AB coal mine, the paper comprehensively studies the overlying strata movement and the stress evolution laws of stope during superhigh-water material (SHWM) backfilling longwall face across fault by UDEC numerical simulation, theoretical analysis and on-site measurement. The results show that the stress during stable state is affected by the fault will increases abnormally. While the longwall face pass through the fault, the stress will abated and the vertical displacement of the overlying strata of two sides of the fault is significantly different. The fault significant blocks the propagation of stress and development of plastic zone. The superhigh-water material filling mining management roof has good protection effect on the roof when the longwall face encounters fault, which can effectively weaken the blocks effect of fault on stress propagation and plastic zone development. The numerical simulation results are consistent with the field experiments, and the research result provides theoretical basis and technical guidance for safe and efficient production during superhigh-water material backfilling longwall face through the fault.http://dx.doi.org/10.1080/19475705.2020.1763482superhigh-water materialbackfilling miningfault structureoverlying stratastress evolution
spellingShingle Fangtian Wang
Qi Ma
Cun Zhang
Guangming Feng
Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
Geomatics, Natural Hazards & Risk
superhigh-water material
backfilling mining
fault structure
overlying strata
stress evolution
title Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
title_full Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
title_fullStr Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
title_full_unstemmed Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
title_short Overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
title_sort overlying strata movement and stress evolution laws triggered by fault structures in backfilling longwall face with deep depth
topic superhigh-water material
backfilling mining
fault structure
overlying strata
stress evolution
url http://dx.doi.org/10.1080/19475705.2020.1763482
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AT cunzhang overlyingstratamovementandstressevolutionlawstriggeredbyfaultstructuresinbackfillinglongwallfacewithdeepdepth
AT guangmingfeng overlyingstratamovementandstressevolutionlawstriggeredbyfaultstructuresinbackfillinglongwallfacewithdeepdepth