Advance Search
LEI Zhaoyuan,ZHAO Maoping,LI Tuanjie,et al. Strong mine pressure appearing mechanism and control at deep buried working face with large mining height[J]. Coal Science and Technology,2025,53(5):13−22. DOI: 10.12438/cst.2024-0324
Citation: LEI Zhaoyuan,ZHAO Maoping,LI Tuanjie,et al. Strong mine pressure appearing mechanism and control at deep buried working face with large mining height[J]. Coal Science and Technology,2025,53(5):13−22. DOI: 10.12438/cst.2024-0324

Strong mine pressure appearing mechanism and control at deep buried working face with large mining height

More Information
  • Received Date: March 14, 2024
  • Available Online: May 09, 2025
  • During the mining of the adjacent working face, the strong mine pressure caused by the hard thick roof has obvious zoning characteristics due to the mining of the previous deeply buried large mining height working face. The mechanism of the strong mine pressure at the adjacent working face is the basis for realizing safe and efficient mining. This paper takes the deeply buried large mining height working face at Huangling No.2 Mine as the background, and adopts the methods of geological investigation, theoretical analysis and numerical calculation to analyze the characteristics of the strong mine pressure, the breaking characteristics of the hard thick roof, and the evolution relationship between energy and stress, so as to reveal the occurrence mechanism of strong mine pressure at the adjacent working face of the deep-buried large mining height, and specifies the prevention and control direction of the strong mine pressure. The results show that the number and energy of microseismic events generated by the hard thick roof accounted for 52.12% and 69.4% of the total number of events and total energy, respectively. Zoning display feature was formed in which the value of the energy release on the proximal side was large, and the interior of the roof plate on the solid side was basically intact along the tendency of the working face. The hard thick roof plate constraint boundary conditions of “two solid support, one simple and one free” breaks at the working face tends to be about 108m from the coal pillar of the adjacent section of the breakage. The energy and stress of the hard thick roof under the mining disturbance of 21422 working face form a reduced distribution characteristics from the airside to the solid side. The zonality of the stress and energy distribution is consistently related to the asymmetric breaking of the roof, as derived from the concentration difference coefficient. The hard thick roof has a high degree of release in the 110m range on the air side, and is in a energy storage stage in the range of about 70m from the coal pillar on the boundary of the solid side. According to the results, the strategy of weakening the stress concentration of the roof plate on the airside and blocking the transmission of stress on the solid side has been formed, which provides a reference basis for the effective prevention and control of the strong mine pressure in the deeply buried large mining height working face.

  • [1]
    蔡美峰. 岩石力学与工程[M]. 北京:科学出版社,2002.
    [2]
    钱鸣高,许家林. 煤炭开采与岩层运动[J]. 煤炭学报,2019,44(4):973−984.

    QIAN Minggao,XU Jialin. Behaviors of strata movement in coal mining[J]. Journal of China Coal Society,2019,44(4):973−984.
    [3]
    JU J F,XU J L. Structural characteristics of key strata and strata behaviour of a fully mechanized longwall face with 7.0m height chocks[J]. International Journal of Rock Mechanics and Mining Sciences,2013,58:46−54. doi: 10.1016/j.ijrmms.2012.09.006
    [4]
    王普,周海勇,万广绪,等. 硬厚顶板下邻断层工作面不同推采方向应力特征分析[J]. 采矿与岩层控制工程学报,2021,3(4):63−71.

    WANG Pu,ZHOU Haiyong,WAN Guangxu,et al. Stress characteristics of different mining directions adjacented fault under hard thick roof[J]. Journal of Mining and Strata Control Engineering,2021,3(4):63−71.
    [5]
    卜滕滕. 深井厚煤层综放工作面顶板运动与沿空巷道围岩变形动态响应关系[J]. 采矿与岩层控制工程学报,2021,3(2):23−31.

    BU Tengteng. Dynamic response relationship between roof movement and deformation of roadway in fully mechanized caving face of deep and thick coal seam[J]. Journal of Mining and Strata Control Engineering,2021,3(2):23−31.
    [6]
    高学鹏,于凤海,任强,等. 西部鄂尔多斯矿区强矿压显现及顶板运动规律[J]. 金属矿山,2020(6):191−197.

    GAO Xuepeng,YU Fenghai,REN Qiang,et al. Strata movement law and strong ground behavior in western Ordos Coalfield[J]. Metal Mine,2020(6):191−197.
    [7]
    王金东. 综放开采覆岩高位结构稳定性及强矿压形成机理研究[D]. 西安:西安科技大学,2015.

    WANG Jindong. Study on structural stability of overlying strata and formation mechanism of strong ground pressure in fully mechanized top-coal caving mining[D]. Xi’an:Xi’an University of Science and Technology,2015.
    [8]
    张培鹏,蒋力帅,刘绪峰,等. 高位硬厚岩层采动覆岩结构演化特征及致灾规律[J]. 采矿与安全工程学报,2017,34(5):852−860.

    ZHANG Peipeng,JIANG Lishuai,LIU Xufeng,et al. Mining-induced overlying strata structure evolution characteristics and disaster-triggering under high level hard thick strata[J]. Journal of Mining & Safety Engineering,2017,34(5):852−860.
    [9]
    夏彬伟,李晓龙,卢义玉,等. 大同矿区坚硬顶板破断步距及变形规律研究[J]. 采矿与安全工程学报,2016,33(6):1038−1044.

    XIA Binwei,LI Xiaolong,LU Yiyu,et al. Study on the breaking span and deformation of hard roof in Datong mining area[J]. Journal of Mining & Safety Engineering,2016,33(6):1038−1044.
    [10]
    王拓,常聚才,张兵,等. 综采面多层坚硬顶板破断特征及其安全控制研究[J]. 地下空间与工程学报,2017,13(S1):339−343.

    WANG Tuo,CHANG Jucai,ZHANG Bing,et al. Study on fracture characteristics and safety control of multi-layer hard roof in fully mechanized mining face[J]. Chinese Journal of Underground Space and Engineering,2017,13(S1):339−343.
    [11]
    霍丙杰,于斌,张宏伟,等. 多层坚硬顶板采场覆岩“拱壳” 大结构形成机理研究[J]. 煤炭科学技术,2016,44(11):18−23.

    HUO Bingjie,YU Bin,ZHANG Hongwei,et al. Study on formation mechanism of arch shell large structure of overburden in coal mining face with multi layer hard roof[J]. Coal Science and Technology,2016,44(11):18−23.
    [12]
    于斌,刘长友,杨敬轩,等. 坚硬厚层顶板的破断失稳及其控制研究[J]. 中国矿业大学学报,2013,42(3):342−348.

    YU Bin,LIU Changyou,YANG Jingxuan,et al. Research on the fracture instability and its control technique of hard and thick roof[J]. Journal of China University of Mining & Technology,2013,42(3):342−348.
    [13]
    YU B. Behaviors of overlying strata in extra-thick coal seams using top-coal caving method[J]. Journal of Rock Mechanics and Geotechnical Engineering,2016,8(2):238−247. doi: 10.1016/j.jrmge.2015.11.006
    [14]
    曹胜根,姜海军,王福海,等. 采场上覆坚硬岩层破断的数值模拟研究[J]. 采矿与安全工程学报,2013,30(2):205−210.

    CAO Shenggen,JIANG Haijun,WANG Fuhai,et al. Numerical simulation of overlying hard strata rupture in a coal face[J]. Journal of Mining and Strata Control Engineering,2013,30(2):205−210.
    [15]
    浦海,黄耀光,陈荣华. 采场顶板X-O型断裂形态力学分析[J]. 中国矿业大学学报,2011,40(6):835−840.

    PU Hai,HUANG Yaoguang,CHEN Ronghua. Mechanical analysis for X-O type fracture morphology of stope roof[J]. Journal of China University of Mining & Technology,2011,40(6):835−840.
    [16]
    朱卫兵,于斌,鞠金峰,等. 采场顶板关键层“横U-Y” 型周期破断特征的试验研究[J]. 煤炭科学技术,2020,48(2):36−43.

    ZHU Weibing,YU Bin,JU Jinfeng,et al. Experimental study on “horizontal U-Y” periodical breakage characteristics of key strata in stope roof[J]. Coal Science and Technology,2020,48(2):36−43.
    [17]
    于斌,高瑞,孟祥斌,等. 大空间远近场结构失稳矿压作用与控制技术[J]. 岩石力学与工程学报,2018,37(5):1134−1145.

    YU Bin,GAO Rui,MENG Xiangbin,et al. Near-far strata structure instability and associate strata behaviors in large space and corresponding control technology[J]. Chinese Journal of Rock Mechanics and Engineering,2018,37(5):1134−1145.
    [18]
    王树仁,贾会会,武崇福. 动荷载作用下采空区顶板安全厚度确定方法及其工程应用[J]. 煤炭学报,2010,35(8):1263−1268.

    WANG Shuren,JIA Huihui,WU Chongfu. Determination method of roof safety thickness in the mined-out regions under dynamic loading and its application[J]. Journal of China Coal Society,2010,35(8):1263−1268.
    [19]
    徐刚,于健浩,范志忠,等. 国内典型顶板条件工作面矿压显现规律[J]. 煤炭学报,2021,46(S1):25−37.

    XU Gang,YU Jianhao,FAN Zhizhong,et al. Characteristics of strata pressure behavior of working face under typicalroof conditions in China[J]. Journal of China Coal Society,2021,46(S1):25−37.
    [20]
    黄耀光,浦海. 不同边界下的坚硬顶板极限承载分析及破断距确定[J]. 煤矿开采,2012(2):12−16. doi: 10.3969/j.issn.1006-6225.2012.02.004

    HUANG Yaoguang,PU Hai. Analysis of roof limit load and broken pace under different boundary conditions[J]. Coal Mining Technology,2012(2):12−16. doi: 10.3969/j.issn.1006-6225.2012.02.004
    [21]
    李铁,张山林,李守峰,等. 华亭煤矿强矿压力学机制与防治对策[J]. 煤炭学报,2016,41(5):1093−1098.

    LI Tie,ZHANG Shanlin,LI Shoufeng,et al. Mechanism and control measures of rockburst in Huating coal mine[J]. Journal of China Coal Society,2016,41(5):1093−1098.
    [22]
    崔峰,冯港归,来兴平,等. 巨厚强冲击倾向性煤层高强度开采特征与高强度开采定义[J]. 煤炭学报,2023,48(2):649−665.

    CUI Feng,FENG Ganggui,LAI Xingping,et al. Characteristics and definition of high-intensity mining in extremely thick coal seam with strong impact tendency[J]. Journal of China Coal Society,2023,48(2):649−665.
    [23]
    钱鸣高,石平五,许家林. 矿山压力与岩层控制[M]. 2版. 徐州:中国矿业大学出版社,2010.
    [24]
    许家林,鞠金峰. 特大采高综采面关键层结构形态及其对矿压显现的影响[J]. 岩石力学与工程学报,2011,30(8):1547−1556.

    XU Jialin,JU Jinfeng. Structural morphology of key stratum and its influence on strata behaviors in fully-mechanized face with super-large mining height[J]. Chinese Journal of Rock Mechanics and Engineering,2011,30(8):1547−1556.
    [25]
    雷照源,李团结,崔峰,等. 深部厚煤层动静载荷下区段煤柱损伤演化分析[J]. 西安科技大学学报,2022,42(1):91−98.

    LEI Zhaoyuan,LI Tuanjie,CUI Feng,et al. Damage evolution analysis of section coal pillar under dynamic and static load in deep thick coal seam[J]. Journal of Xi’an University of Science and Technology,2022,42(1):91−98.

Catalog

    Article views PDF downloads Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return