Volume 50 Issue 8
Aug.  2024
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ZHAO Jie, ZHANG Ningbo, LIU Haibing. Research on deformation features and control strategies of repeated mining roadways in Guanjiaya Coal Mine[J]. Journal of Mine Automation,2024,50(8):44-51.  doi: 10.13272/j.issn.1671-251x.2024050043
Citation: ZHAO Jie, ZHANG Ningbo, LIU Haibing. Research on deformation features and control strategies of repeated mining roadways in Guanjiaya Coal Mine[J]. Journal of Mine Automation,2024,50(8):44-51.  doi: 10.13272/j.issn.1671-251x.2024050043

Research on deformation features and control strategies of repeated mining roadways in Guanjiaya Coal Mine

doi: 10.13272/j.issn.1671-251x.2024050043
  • Received Date: 2024-05-15
  • Rev Recd Date: 2024-08-25
  • Available Online: 2024-08-22
  • The surrounding rock of the repeated mining roadway is severely deformed and cannot be reused, and the repeated mining roadway has obvious overlapping extension features during the service period. In order to solve the above problems, this study takes the 13092 roadway of Guanjiaya Coal Mine as the research background, and adopts on-site measurement, numerical simulation, and theoretical analysis methods to investigate the overlapping extension features and control measures of repeated mining roadway deformation. The analysis of deformation features of repeated mining roadways shows the following points. ① Under a single mining disturbance, the deformation of repeated mining roadways exhibits zoning and asymmetric failure features, which can be divided into rapid deformation zone, strong deformation zone, and slow deformation zone. The crack damage mainly occurs in the coal wall and coal pillar walls, with less damage to the roof and floor, manifested as significant fragmentation and inward movement of the two sides of the roadway. Severe deformation occurs at the intersection of the coal wall and roof, as well as the coal pillar and floor. ② The secondary mining roadway expands and overlaps on the basis of the primary damage, making the asymmetric damage more significant and forming a butterfly shaped plastic failure zone in the surrounding rock of the roadway. ③ The key time for controlling the surrounding rock of the repeated mining roadway is the first mining stage. The key area is the coal pillar side of the roadway in the strong deformation zone and the slow deformation zone. By analyzing the butterfly deformation features and failure zoning rules of mining roadways, a multi-level coupling control technology for repeated mining roadways is proposed. Shallow low pressure - deep high pressure grouting is used to improve the support force of coal pillars. The anchor cables are used to reinforce and improve the support force of support bodies, achieving coupling control. The comparative analysis of deformation before and after reinforcement has verified that multi-level coupling control meets the requirements of roadway reuse.

     

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  • [1]
    朱卫兵,王晓振,谢建林,等. 矿山采动覆岩内部岩移原位监测技术进展及应用[J]. 工矿自动化,2023,49(9):1-12.

    ZHU Weibing,WANG Xiaozhen,XIE Jianlin,et al. Advancements and applications:in situ monitoring technology for overburden movement in mining[J]. Journal of Mine Automation,2023,49(9):1-12.
    [2]
    李波,王涛,李明. 强采动影响复用巷道墩柱支护技术研究与应用[J]. 煤炭工程,2023,55(7):51-57.

    LI Bo,WANG Tao,LI Ming. Research and application of pier column support technology for reused roadway with strong mining impact[J]. Coal Engineering,2023,55(7):51-57.
    [3]
    李超. 复用巷道水力压裂切顶应力场响应及控制效果评价[J]. 山西煤炭,2023,43(4):14-19,32. doi: 10.3969/j.issn.1672-5050.2023.04.004

    LI Chao. Stress field response and control effect evaluation of hydraulic fracturing and roof cutting in reused roadway[J]. Shanxi Coal,2023,43(4):14-19,32. doi: 10.3969/j.issn.1672-5050.2023.04.004
    [4]
    刘光饶,齐振敏,杨位良,等. 强采动巷道断顶卸压稳定性控制机理及应用[J]. 科学技术与工程,2024,24(17):7090-7098. doi: 10.12404/j.issn.1671-1815.2304786

    LIU Guangrao,QI Zhenmin,YANG Weiliang,et al. Control mechanism and application of roof break relief stability of strong mining roadway[J]. Science Technology and Engineering,2024,24(17):7090-7098. doi: 10.12404/j.issn.1671-1815.2304786
    [5]
    谢生荣,王恩,陈冬冬,等. 深部强采动大断面煤巷围岩外锚−内卸协同控制技术[J]. 煤炭学报,2022,47(5):1946-1957.

    XIE Shengrong,WANG En,CHEN Dongdong,et al. Collaborative control technology of external anchor-internal unloading of surrounding rock in deep large-section coal roadway under strong mining influence[J]. Journal of China Coal Society,2022,47(5):1946-1957.
    [6]
    闫帅,柏建彪,卞卡,等. 复用回采巷道护巷煤柱合理宽度研究[J]. 岩土力学,2012,33(10):3081-3086,3150.

    YAN Shuai,BAI Jianbiao,BIAN Ka,et al. Investigation on rational barrier pillar width of reused gateroad in coal mines[J]. Rock and Soil Mechanics,2012,33(10):3081-3086,3150.
    [7]
    张鹏,赵健,许向前. 复用巷道小煤柱宽度及围岩应力研究[J]. 煤炭技术,2017,36(10):61-63.

    ZHANG Peng,ZHAO Jian,XU Xiangqian. Study on small coal pillar width of reused roadway and surrounding rock stress[J]. Coal Technology,2017,36(10):61-63.
    [8]
    岳延朋,王涛,孙志勇. 回采工作面多巷布置复用巷道全锚索支护技术研究[J]. 矿业安全与环保,2022,49(4):169-175.

    YUE Yanpeng,WANG Tao,SUN Zhiyong. Research on the whole anchor cable support technology of multi-roadway layout of roadway reuse in coal face[J]. Mining Safety & Environmental Protection,2022,49(4):169-175.
    [9]
    赵志强,马念杰,刘洪涛,等. 巷道蝶形破坏理论及其应用前景[J]. 中国矿业大学学报,2018,47(5):969-978.

    ZHAO Zhiqiang,MA Nianjie,LIU Hongtao,et al. A butterfly failure theory of rock mass around roadway and its application prospect[J]. Journal of China University of Mining & Technology,2018,47(5):969-978.
    [10]
    范子儀,李永亮,孙昊,等. 采动影响下弱胶结软岩巷道非对称变形特征与控制对策[J]. 采矿与岩层控制工程学报,2022,4(2):44-53.

    FAN Ziyi,LI Yongliang,SUN Hao,et al. Characteristics and control measures of unsymmetric deformation of roadways within weakly-cemented soft rock[J]. Journal of Mining and Strata Control Engineering,2022,4(2):44-53.
    [11]
    郝英豪,王帅,张鑫,等. 超前支承压力影响下破碎顶板变形机制与控制[J]. 煤矿安全,2024,55(3):147-154.

    HAO Yinghao,WANG Shuai,ZHANG Xin,et al. Deformation mechanism and control of broken roof under the influence of advance bearing pressure[J]. Safety in Coal Mines,2024,55(3):147-154.
    [12]
    张懿,张向阳,卜庆为,等. 厚煤切顶巷道顶板围岩支护承载稳定性分析[J]. 采矿与岩层控制工程学报,2022,4(6):37-46.

    ZHANG Yi,ZHANG Xiangyang,BU Qingwei,et al. Analysis on bearing stability of roof surrounding rock support in thick coal roof cutting roadway[J]. Journal of Mining and Strata Control Engineering,2022,4(6):37-46.
    [13]
    陈政文,吴士良,姜南. 动载作用下巷道超前支护区域划分[J]. 工矿自动化,2023,49(12):139-146.

    CHEN Zhengwen,WU Shiliang,JIANG Nan. Division of advanced support areas in roadways under dynamic loads[J]. Journal of Mine Automation,2023,49(12):139-146.
    [14]
    杨军,王宏宇,王亚军,等. 切顶卸压无煤柱自成巷顶板断裂特征研究[J]. 采矿与安全工程学报,2019,36(6):1137-1144.

    YANG Jun,WANG Hongyu,WANG Yajun,et al. Fracture characteristics of the roof in gob-side entry retaining with roof cutting and pressure release[J]. Journal of Mining & Safety Engineering,2019,36(6):1137-1144.
    [15]
    吴祥业,王婧雅,郭晓菲,等. 重复采动巷道围岩塑性区叠加扩展形态特征及量化判别方法[J]. 中国矿业大学学报,2024,53(1):46-58,105.

    WU Xiangye,WANG Jingya,GUO Xiaofei,et al. Morphological characteristics and quantitative discriminant method of superimposed plastic zone expansion of surrounding rock of repeated mining roadway[J]. Journal of China University of Mining & Technology,2024,53(1):46-58,105.
    [16]
    吴祥业,王婧雅,陈世江,等. 重复采动巷道塑性区调控原理与稳定控制[J]. 岩土力学,2022,43(1):205-217.

    WU Xiangye,WANG Jingya,CHEN Shijiang,et al. Regulation principle and stability control of plastic zone in repeated mining roadway[J]. Rock and Soil Mechanics,2022,43(1):205-217.
    [17]
    郭晓菲,马念杰,赵希栋,等. 圆形巷道围岩塑性区的一般形态及其判定准则[J]. 煤炭学报,2016,41(8):1871-1877.

    GUO Xiaofei,MA Nianjie,ZHAO Xidong,et al. General shapes and criterion for surrounding rock mass plastic zone of round roadway[J]. Journal of China Coal Society,2016,41(8):1871-1877.
    [18]
    王宇,涂敏,付宝杰,等. 深井侧向采动应力分布规律及沿空巷道支护[J]. 采矿与岩层控制工程学报,2020,2(3):40-47.

    WANG Yu,TU Min,FU Baojie,et al. Study on the distribution of side abutment pressures and ground support for double-used entries in deep mining[J]. Journal of Mining and Strata Control Engineering,2020,2(3):40-47.
    [19]
    张进鹏,刘立民,刘传孝,等. 基于预应力锚和自应力注的破碎围岩锚注加固应用研究[J]. 采矿与安全工程学报,2021,38(4):774-783.

    ZHANG Jinpeng,LIU Limin,LIU Chuanxiao,et al. Application of bolt-grouting reinforcement for broken surrounding rock based on prestressed bolt and self-stress grouting[J]. Journal of Mining & Safety Engineering,2021,38(4):774-783.
    [20]
    李树刚,成小雨,刘超,等. 破碎围岩动压巷道锚索支护与注浆加固技术研究[J]. 煤炭科学技术,2016,44(1):67-72.

    LI Shugang,CHENG Xiaoyu,LIU Chao,et al. Research on technology of anchor cable supporting and grouting reinforcement for dynamic pressurized tunnel with crushed surrounding rock[J]. Coal Science and Technology,2016,44(1):67-72.
    [21]
    张洪伟,万志军,张源. 非充分稳定覆岩下综放沿空掘巷窄煤柱巷旁注浆加固机理[J]. 采矿与安全工程学报,2018,35(3):489-495.

    ZHANG Hongwei,WAN Zhijun,ZHANG Yuan. Mechanism of grouted- reinforcement in last roadway for pillar in the fully-mechanized gob-side entry[J]. Journal of Mining & Safety Engineering,2018,35(3):489-495.
    [22]
    曹庆华,杨月飞,陈慧明,等. 深部沿空留巷超前锚索补强支护及数值模拟[J]. 中国矿业,2023,32(4):133-139. doi: 10.12075/j.issn.1004-4051.2023.04.005

    CAO Qinghua,YANG Yuefei,CHEN Huiming,et al. Numerical simulation of advanced anchor cable active reinforcement and support in deep gob side entry retaining[J]. China Mining Magazine,2023,32(4):133-139. doi: 10.12075/j.issn.1004-4051.2023.04.005
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