Advance Search
SHUANG Haiqing,XIN Yueqiang,LI Shugang,et al. Characterization of fissure distribution of overburden rock under roof cutting and entry retaining based on key strata theory[J]. Coal Science and Technology,2024,52(5):102−113. DOI: 10.12438/cst.2023-1368
Citation: SHUANG Haiqing,XIN Yueqiang,LI Shugang,et al. Characterization of fissure distribution of overburden rock under roof cutting and entry retaining based on key strata theory[J]. Coal Science and Technology,2024,52(5):102−113. DOI: 10.12438/cst.2023-1368

Characterization of fissure distribution of overburden rock under roof cutting and entry retaining based on key strata theory

Funds: 

National Natural Science Foundation of China (51904238, 52074217)

More Information
  • Received Date: September 22, 2023
  • Available Online: May 08, 2024
  • Aiming at the problem of changing the distribution of overburden fissures in the overhead mining area due to the cutting and retaining roadway process, the stress distribution, overburden transport and mining fissure distribution law in the mining zone under the roof cutting and retaining roadway process were analyzed by means of a combination of physical similarity simulation and numerical simulation. On this basis, based on the key strata theory and the cumulative effect of unloading and expansion of mining overburden, the changes in the height of overburden fissure development and the width of fissure zones on the roof cutting and un-cutting sides were investigated, the extraction effect of the directional unloading gas extraction boreholes in different strata was analyzed, and the overburden fissure distribution law under the roof cutting and retaining roadway process was verified and inverted. The results shown that, the roof cutting and retaining roadway process can effectively reduce the stress concentration of the top and bottom plates on the roof cutting side, but the stress will still be transferred to the deeper part of coal. Roof cutting caused changes in the thickness of the collapsed rock layer and the form of roof breakage, which led to the changes in the height of the fissure zone development, and the width of the off-strata fissure zones within the sub-critical strata control range. The height of the collapsed zone on the roof cutting side was twice as much as that on the un-cutting side, and the height of the fissure zone was 0.87 times as much as that on the un-cutting side. In the middle and lower part of the fissure zone, the amount of off- strata and the number of penetrating fissures on the cut top side are larger than those on the uncut top side; the amount of fissure development on the roof cutting side were larger than those on the un-cutting side. The amount of fissure development on the coal seam roof of roof cutting side increased with the increasing distance in the range of 8−30 m, and decreased with the increasing distance in the range of 30−48 m, The fissures were mainly distributed in the middle and lower part of the fissure zone. The “staggered” gas concentration and flow rate of the extraction boreholes in different layers validated the above conclusions. The study results have certain reference value for the decompression gas management in high gas mines under the process of roof cutting and retaining roadway.

  • [1]
    袁 亮. 我国煤炭主体能源安全高质量发展的理论技术思考[J]. 中国科学院院刊,2023,38(1):11−22.

    YUAN Liang. Theory and technology considerations on high-quality development of coal main energy security in China[J]. Bulletin of Chinese Academy of Sciences,2023,38(1):11−22.
    [2]
    何满潮,陈上元,郭志飚,等. 切顶卸压沿空留巷围岩结构控制及其工程应用[J]. 中国矿业大学学报,2017,46(5):959−969.

    HE Manchao,CHEN Shangyuan,GUO Zhibiao,et al. Control of surrounding rock structure for gob-side entry retaining by cutting roof to release pressure and its engineering application[J]. Journal of China University of Mining & Technology,2017,46(5):959−969.
    [3]
    许家林,钱鸣高. 地面钻井抽放上覆远距离卸压煤层气试验研究[J]. 中国矿业大学学报,2000,29(1):78−81. doi: 10.3321/j.issn:1000-1964.2000.01.020

    XU Jialin,QIAN Minggao. Study on drainage of relieved m ethane from overlying coal seam far away from the protective seam by surface well[J]. Journal of China University of Mining & Technology,2000,29(1):78−81. doi: 10.3321/j.issn:1000-1964.2000.01.020
    [4]
    钱鸣高,许家林. 覆岩采动裂隙分布的“O”形圈特征研究[J]. 煤炭学报,1998,23(5):20−23.

    QIAN Minggao,XU Jialin. Study on the “O-shape” circle distribution characteristics of mining-induced fractures in the overlaying strata[J]. Journal of China Coal Society,1998,23(5):20−23.
    [5]
    袁 亮. 低透高瓦斯煤层群安全开采关键技术研究[J]. 岩石力学与工程学报,2008,27(7):1370−1379. doi: 10.3321/j.issn:1000-6915.2008.07.009

    YUAN Liang. Key technique of safe mining in low permeability and methane-rich seam group[J]. Chinese Journal of Rock Mechanics and Engineering,2008,27(7):1370−1379. doi: 10.3321/j.issn:1000-6915.2008.07.009
    [6]
    袁 亮. 低透气煤层群首采关键层卸压开采采空侧瓦斯分布特征与抽采技术[J]. 煤炭学报,2008,33(12):1362−1367. doi: 10.3321/j.issn:0253-9993.2008.12.007

    YUAN Liang. Gas distribution of the mined-out side and extraction technology of first mined key seam relief-mining in gassy multi-seams of low permeability[J]. Journal of China Coal Society,2008,33(12):1362−1367. doi: 10.3321/j.issn:0253-9993.2008.12.007
    [7]
    李树刚,林海飞,赵鹏翔,等. 采动裂隙椭抛带动态演化及煤与甲烷共采[J]. 煤炭学报,2014,39(8):1455−1462.

    LI Shugang,LIN Haifei,ZHAO Pengxiang,et al. Dynamic evolution of mining fissure elliptic paraboloid zone and extraction coal and gas[J]. Journal of China Coal Society,2014,39(8):1455−1462.
    [8]
    丁 洋,朱 冰,李树刚,等. 高突矿井采空区卸压瓦斯精准辨识及高效抽采[J]. 煤炭学报,2021,46(11):3565−3577.

    DING Yang,ZHU Bing,LI Shugang,et al. Accurate identification and efficient drainage of relieved methane in goaf of high outburst mine[J]. Journal of China Coal Society,2021,46(11):3565−3577.
    [9]
    李树刚,杨二豪,林海飞,等. 深部开采卸压瓦斯精准抽采体系构建及实践[J]. 煤炭科学技术,2021,49(5):1−10.

    LI Shugang,YANG Erhao,LIN Haifei,et al. Construction and practice of accurate gas drainage system for pressure relief gas in deep mining[J]. Coal Science and Technology,2021,49(5):1−10.
    [10]
    李树刚,刘李东,赵鹏翔,等. 综采工作面覆岩压实区裂隙动态演化规律影响因素分析[J]. 煤炭科学技术,2022,50(1):95−104. doi: 10.3969/j.issn.0253-2336.2022.1.mtkxjs202201008

    LI Shugang,LIU Lidong,ZHAO Pengxiang,et al. Analysis and application of fracture evolution law of overburden compacted area on fully-mechanized mining face under multiple factors[J]. Coal Science and Technology,2022,50(1):95−104. doi: 10.3969/j.issn.0253-2336.2022.1.mtkxjs202201008
    [11]
    MOHAMMAD Rezaei,MOHAMMAD Farouq Hossaini,ABBAS Majdi. A time-independent energy model to determine the height of destressed zone above the mined panel in longwall coal mining[J]. Tunnelling and Underground Space Technology incorporating Trenchless Technology Research,2015,47:81−92.
    [12]
    ABBAS Majdi,FERRI P. Hassani,MEHDI Yousef Nasiri. Prediction of the height of destressed zone above the mined panel roof in longwall coal mining[J]. International Journal of Coal Geology,2012,98:62−72.
    [13]
    王 旭,尹尚先,徐 斌,等. 综采工作条件下覆岩导水裂隙带高度预测模型优化[J]. 煤炭科学技术,2023,51(S1):284−297. doi: 10.12438/cst.2022-1530

    WANG Xu,YIN Shangxian,XU Bin,et al. Study on height optimization prediction model of overburden water-conducting fracture zone under fully mechanized mining[J]. Coal Science and Technology,2023,51(S1):284−297. doi: 10.12438/cst.2022-1530
    [14]
    王 炯,朱道勇,宫伟力,等. 切顶卸压自动成巷岩层运动规律物理模拟实验[J]. 岩石力学与工程学报,2018,37(11):2536−2547.

    WANG Jiong,ZHU Daoyong,GONG Weili,et al. Physical simulation experiment on the movement of rock strata upon automatic roadway forming by roof cutting and pressure releasing[J]. Chinese Journal of Rock Mechanics and Engineering,2018,37(11):2536−2547.
    [15]
    刘红威,赵阳升,REN Tingxiang,等. 切顶成巷条件下采空区覆岩破坏与裂隙发育特征[J]. 中国矿业大学学报,2022,51(1):77−89.

    LIU Hongwei,ZHAO Yangsheng,REN Tingxiang,et al. Characteristics of overburden failure and facture development in gob of mining with gob-side entry formed by cutting roof[J]. Journal of China University of Mining & Technology,2022,51(1):77−89.
    [16]
    高建良,孙望望. J型通风工作面采空区漏风与瓦斯浓度分布规律研究[J]. 煤炭工程,2018,50(1):132−136. doi: 10.11799/ce201801036

    GAO Jianliang,SUN Wangwang. Study on air leakage and gas concentration distribution law in working face goaf with J type ventilation system[J]. Coal Engineering,2018,50(1):132−136. doi: 10.11799/ce201801036
    [17]
    高建良,李炫烨. 尾巷风量对“J”型通风工作面漏风及瓦斯分布的影响[J]. 煤矿安全,2017,48(8):166−169.

    GAO Jianliang,LI Xuanye. Effect of air volume in tail gateway on air leakage and gas distribution in“J”type ventilation working face[J]. Safety in Coal Mines,2017,48(8):166−169.
    [18]
    郭明杰,郭文兵,赵高博,等. 长壁开采覆岩内水平定向长钻孔位置特征与卸压瓦斯抽采机理[J]. 煤炭学报,2023,48(10):3750−3765.

    GUO Mingjie,GUO Wenbing,ZHAO Gaobo,et al. Position characteristics of horizontal-directional long boreholes in overlying strata and drainage mechanism of pressure-relief gas in longwall mining[J]. Journal of China Coal Society,2023,48(10):3750−3765.
    [19]
    孙晓明,刘 鑫,梁广峰,等. 薄煤层切顶卸压沿空留巷关键参数研究[J]. 岩石力学与工程学报,2014,33(7):1449−1456.

    SUN Xiaoming,LIU Xin,LIANG Guangfeng,et al. Key parameters of gob-side entry retaining formed by roof cut and pressure releasing in thin coal seams[J]. Chinese Journal of Rock Mechanics and Engineering,2014,33(7):1449−1456.
    [20]
    张庆贺,袁 亮,王汉鹏,等. 煤与瓦斯突出物理模拟相似准则建立与分析[J]. 煤炭学报,2016,41(11):2773−2779.

    ZHANG Qinghe,YUAN Liang,WANG Hanpeng,et al. Establishment and analysis of similarity criteria for physical simulation of coal and gas outburst[J]. Journal of China Coal Society,2016,41(11):2773−2779.
    [21]
    赵鹏翔,王 超,李树刚,等. 巨厚煤层综放开采上覆临近采空区裂隙二次演化特征分析[J]. 采矿与安全工程学报,2022,39(1):13−24.

    ZHAO Pengxiang,WANG Chao,LI Shugang,et al. Secondary evolution characteristics of fractures in overburden adjacent goafs during fully mechanized caving of extremely thick coal seams[J]. Journal of Mining and Safety Engineering,2022,39(1):13−24.
    [22]
    魏江波,王双明,宋世杰,等. 浅埋煤层过沟开采覆岩裂隙与地表裂缝演化规律数值模拟[J]. 煤田地质与勘探,2022,50(10):67−75.

    WEI Jiangbo,WANG Shuangming,SONG Shijie,et al. Numerical simulation on evolution law of overburden fractures and surface cracks in crossing ditch mining of shallow coal seam[J]. Coal Geology & Exploration,2022,50(10):67−75.
    [23]
    来兴平,张旭东,单鹏飞,等. 厚松散层下三软煤层开采覆岩导水裂隙发育规律[J]. 岩石力学与工程学报,2021,40(9):1739−1750.

    LAI Xingping,ZHANG Xudong,SHAN Pengfei,et al. Study on development law of water-conducting fractures in overlying strata of three soft coal seam mining under thick loose layers[J]. Chinese Journal of Rock Mechanics and Engineering,2021,40(9):1739−1750.
    [24]
    李春元,张 勇,张国军,等. 深部开采动力扰动下底板应力演化及裂隙扩展机制[J]. 岩土工程学报,2018,40(11):2031−2040.

    LI Chunyuan,ZHANG Yong,ZHANG Guojun,et al. Crack propagation mechanisms and stress evolution of floor under dynamic disturbance in deep coal mining[J]. Chinese Journal of Geotechnical Engineering,2018,40(11):2031−2040.
    [25]
    徐 超,王 凯,郭 琳,等. 采动覆岩裂隙与渗流分形演化规律及工程应用[J]. 岩石力学与工程学报,2022,41(12):2389−2403.

    XU Chao,WANG Kai,GUO Lin,et al. Fractal evolution law of overlying rock fracture and seepage caused by mining and its engineering application[J]. Chinese Journal of Rock Mechanics and Engineering,2022,41(12):2389−2403.
    [26]
    许家林,秦 伟,陈晓军,等. 采动覆岩卸荷膨胀累积效应的影响因素[J]. 煤炭学报,2022,47(1):115−127.

    XU Jialin,QIN Wei,CHEN Xiaojun,et al. Influencing factors of accumulative effect of overburden strata expansion induced by stress relief[J]. Journal of China Coal Society,2022,47(1):115−127.
    [27]
    何满潮,高玉兵,盖秋凯,等. 无煤柱自成巷力学原理及其工法[J]. 煤炭科学技术,2023,51(1):19−30.

    HE Manchao,GAO Yubing,GAI Qiukai,et al. Mechanical principle and mining methods of automagical entry formation without coal pillars[J]. Coal Science and Technology,2023,51(1):19−30.
    [28]
    黄志安,童海方,张英华,等. 采空区上覆岩层“三带”的界定准则和仿真确定[J]. 北京科技大学学报,2006,28(7):609−612.

    HUANG Zhian,TONG Haifang,ZHANG Yinghua,et al. Dividing guideline and emulating determination of “three zones” of the depressing zones overlying a goaf[J]. Journal of University of Science and Technology Beijing,2006,28(7):609−612.
    [29]
    胡国忠,李 康,许家林,等. 覆岩采动裂隙空间形态反演方法及在瓦斯抽采中的应用[J]. 煤炭学报,2023,48(2):750−762.

    HU Guozhong,LI Kang,XU Jialin,et al. Spatial morphology inversion method of mining-induced fractures of overburden and its application in gas drainage[J]. Journal of China Coal Society,2023,48(2):750−762.
    [30]
    王泓博,张 勇,庞义辉,等. 基于地表点下沉阶段特征的覆岩裂隙带高度演化[J]. 中国矿业大学学报,2022,51(1):24−34.

    WANG Hongbo,ZHANG Yong,PANG Yihui,et al. Evolution of the height of overburden fractured zone based on stage characteristics of surface subsidence[J]. Journal of China University of Mining & Technology,2022,51(1):24−34.
    [31]
    赵鹏翔,张文进,李树刚,等. 高瓦斯厚煤层综采工作面推进速度影响下的瓦斯运–储区交叉融合机理[J]. 煤炭学报,2023,48(9):3405−3419.

    ZHAO Pengxiang,ZHANG Wenjin,LI Shugang,et al. Mechanism of cross-fusion in gas transportation-storage area in fully mechanized mining face of high gas thick coal seam under different advancing speeds[J]. Journal of China Coal Society,2023,48(9):3405−3419.
    [32]
    林海飞,王 旭,徐培耘,等. 特厚煤层开采卸压瓦斯储集区演化特征分析及工程应用[J]. 煤炭科学技术,2023,51(2):173−182.

    LIN Haifei,WANG Xu,XU Peiyun,et al. Evolution characteristics analysis and engineering application of pressure-relieved gas reservoir in extra-thick coal seam mining[J]. Coal Science and Technology,2023,51(2):173−182.
  • Related Articles

    [1]YU Jianxin, ZHOU Lianhao, GUO min, LI Zhenzhen, ZHANG Yingcai. Study on vibration response characteristics of kilometre deep shaft induced by frozen soil blasting in ultra deep alluvium[J]. COAL SCIENCE AND TECHNOLOGY, 2022, 50(12): 109-116. DOI: 10.13199/j.cnki.cst.2021-0456
    [2]LEI Shun, GAO Fuqiang, WANG Xiaoqing. Study on statistics and classification of uniaxial compressive strength of coal[J]. COAL SCIENCE AND TECHNOLOGY, 2021, 49(3): 64-70. DOI: 10.13199/j.cnki.cst.2021.03.007
    [3]WANG Liujun, DENG Yahong, SUN Ke, DUAN Ce. Summarization of study on calculation method of seismic earth pressure in retaining wall[J]. COAL SCIENCE AND TECHNOLOGY, 2018, (8).
    [4]Zang Peigang Wang Wei Ma Hongqiang Li Haipeng, . Research on key construction technologies of frozen shaft in ultra deep and thick alluvium[J]. COAL SCIENCE AND TECHNOLOGY, 2017, (8).
    [5]Cheng Zhibin Zhang Bujun Chen Zhangqing, . Key technology of deep thick soft rock stratum freezing[J]. COAL SCIENCE AND TECHNOLOGY, 2017, (8).
    [6]Uniaxial Compressive Strength of Rock Calculated With Confidence Interval Analysis Method Based on Normal Distribution[J]. COAL SCIENCE AND TECHNOLOGY, 2013, (4).
    [7]Statistical Analysis on Uniaxial Compressive Strength of Coal Measures[J]. COAL SCIENCE AND TECHNOLOGY, 2013, (2).

Catalog

    Article views PDF downloads Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return