Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance

Aiming at the problem that the asymmetric deformation and failure of surrounding rock frequently occur, making it difficult to control the surrounding rock under the conditions of multiple intense mining actions in thecoal seam with large dip angle and close distance. Taking the headgate 31233 in Da...

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Main Authors: Kun PAN, Wenjun JU, Junchao WANG, Housheng JIA, Biao HOU, Yinwei WANG, Zhiming ZHANG
Format: Article
Language:zho
Published: Editorial Department of Coal Science and Technology 2024-12-01
Series:Meitan kexue jishu
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Online Access:http://www.mtkxjs.com.cn/article/doi/10.12438/cst.2023-1801
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author Kun PAN
Wenjun JU
Junchao WANG
Housheng JIA
Biao HOU
Yinwei WANG
Zhiming ZHANG
author_facet Kun PAN
Wenjun JU
Junchao WANG
Housheng JIA
Biao HOU
Yinwei WANG
Zhiming ZHANG
author_sort Kun PAN
collection DOAJ
description Aiming at the problem that the asymmetric deformation and failure of surrounding rock frequently occur, making it difficult to control the surrounding rock under the conditions of multiple intense mining actions in thecoal seam with large dip angle and close distance. Taking the headgate 31233 in Daichiba Coal Mine as the engineering background, the mechanism of surrounding rock deformation and failure in roadways with three cross-sectional shapes under thecoal seam with large dip angle and close distance was studied through theoretical analysis, numerical simulation, and on-site monitoring. The optimal asymmetric roof shaped roadway cross-sectional shape was further determined and optimized. The research results indicate that under the conditions of intense mining of steeply inclined coal seams, regardless of how the roadway cross-section changes, the form of surrounding rock failure always exhibits the maximum depth of failure towards the roof, and due to the strong stress sensitivity of the plastic zone near the upper working face area, the range and depth of the plastic zone reach a maximum, However, there are significant differences in the overall failure patterns and distribution ranges of the plastic zone among the three cross-sectional shapes. In contrast to arch roadway and inclined roof right trapezoidal roadway, the asymmetric roof shaped roadway can adjust the height of the left and right sides as well as the angles of the left and right slope tops in response to changes in surrounding rock conditions. This adjustment leads to a more rational overall stress distribution within the surrounding rock of the roadway, enhances the controllability of rock failure, and improves the utilization rate of the roadway cross-section. Based on the distribution of the plastic zone in the surrounding rock, an uneven control method is proposed, and engineering applications are conducted. The comparison of technical and economic indicators before and after optimizing the cross-section shape indicates that the uneven support method significantly improves the control over surrounding rock deformation. The research results provide an effective scientific basis for the selection of cross-sectional shapes and the optimization of support designs for similar roadways inthecoal seam with large dip angle and close distance.
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institution Kabale University
issn 0253-2336
language zho
publishDate 2024-12-01
publisher Editorial Department of Coal Science and Technology
record_format Article
series Meitan kexue jishu
spelling doaj-art-76efe27976d94aee8483368dbce4a8b32025-01-15T05:38:22ZzhoEditorial Department of Coal Science and TechnologyMeitan kexue jishu0253-23362024-12-015212122210.12438/cst.2023-18012023-1801Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distanceKun PAN0Wenjun JU1Junchao WANG2Housheng JIA3Biao HOU4Yinwei WANG5Zhiming ZHANG6School of Energy and Mining Engineering, China University of Mining and Technology-Beijing, Beijing 100083, ChinaSchool of Energy and Mining Engineering, China University of Mining and Technology-Beijing, Beijing 100083, ChinaDaichiba Mine of Sichuan Chuanmei Huarong Energy Co., Ltd., Guangyuan 628200, ChinaSchool of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454003, ChinaSchool of Energy and Mining Engineering, China University of Mining and Technology-Beijing, Beijing 100083, ChinaSchool of Energy and Mining Engineering, China University of Mining and Technology-Beijing, Beijing 100083, ChinaSchool of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo 454003, ChinaAiming at the problem that the asymmetric deformation and failure of surrounding rock frequently occur, making it difficult to control the surrounding rock under the conditions of multiple intense mining actions in thecoal seam with large dip angle and close distance. Taking the headgate 31233 in Daichiba Coal Mine as the engineering background, the mechanism of surrounding rock deformation and failure in roadways with three cross-sectional shapes under thecoal seam with large dip angle and close distance was studied through theoretical analysis, numerical simulation, and on-site monitoring. The optimal asymmetric roof shaped roadway cross-sectional shape was further determined and optimized. The research results indicate that under the conditions of intense mining of steeply inclined coal seams, regardless of how the roadway cross-section changes, the form of surrounding rock failure always exhibits the maximum depth of failure towards the roof, and due to the strong stress sensitivity of the plastic zone near the upper working face area, the range and depth of the plastic zone reach a maximum, However, there are significant differences in the overall failure patterns and distribution ranges of the plastic zone among the three cross-sectional shapes. In contrast to arch roadway and inclined roof right trapezoidal roadway, the asymmetric roof shaped roadway can adjust the height of the left and right sides as well as the angles of the left and right slope tops in response to changes in surrounding rock conditions. This adjustment leads to a more rational overall stress distribution within the surrounding rock of the roadway, enhances the controllability of rock failure, and improves the utilization rate of the roadway cross-section. Based on the distribution of the plastic zone in the surrounding rock, an uneven control method is proposed, and engineering applications are conducted. The comparison of technical and economic indicators before and after optimizing the cross-section shape indicates that the uneven support method significantly improves the control over surrounding rock deformation. The research results provide an effective scientific basis for the selection of cross-sectional shapes and the optimization of support designs for similar roadways inthecoal seam with large dip angle and close distance.http://www.mtkxjs.com.cn/article/doi/10.12438/cst.2023-1801large dip angleclose distance coal seamsmining roadwayshape of roadway cross-sectionroadway support
spellingShingle Kun PAN
Wenjun JU
Junchao WANG
Housheng JIA
Biao HOU
Yinwei WANG
Zhiming ZHANG
Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
Meitan kexue jishu
large dip angle
close distance coal seams
mining roadway
shape of roadway cross-section
roadway support
title Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
title_full Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
title_fullStr Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
title_full_unstemmed Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
title_short Optimization of cross-sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
title_sort optimization of cross sectional shape and support parameters of headgate in fully mechanized coal seam with large dip angle and close distance
topic large dip angle
close distance coal seams
mining roadway
shape of roadway cross-section
roadway support
url http://www.mtkxjs.com.cn/article/doi/10.12438/cst.2023-1801
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