Processing math: 100%
Advance Search

ZHAO Pengxiang,WANG Yulong,LI Shugang,et al. Division method and fractal characteristics of overburden gas slow permeability zone in up-dip fully mechanized face of inclined thick coal seam[J]. Coal Science and Technology,2023,51(S2):71−83

. DOI: 10.13199/j.cnki.cst.2022-1444
Citation:

ZHAO Pengxiang,WANG Yulong,LI Shugang,et al. Division method and fractal characteristics of overburden gas slow permeability zone in up-dip fully mechanized face of inclined thick coal seam[J]. Coal Science and Technology,2023,51(S2):71−83

. DOI: 10.13199/j.cnki.cst.2022-1444

Division method and fractal characteristics of overburden gas slow permeability zone in up-dip fully mechanized face of inclined thick coal seam

Funds: 

National Natural Science Foundation of China(51974237); Shaanxi Province Youth Science and Technology Rising Star Funding Project (2020KJXX-004); Youth Fund of Xinjiang Natural Science Foundation (2019D01B42)

More Information
  • Received Date: September 05, 2022
  • Available Online: June 29, 2023
  • In order to study the division method and fractal characteristics of the overburden gas slow permeability zone in up-dip fully mechanized face of inclined thick coal seam, based on the fractal theory and grey theory, the plane physical similarity simulation experiment was used to study the crack evolution law of the overburden gas slow permeability zone in up-dip fully mechanized face. The dynamic expansion law of the overburden gas slow permeability zone was obtained, and then the division method of the overburden gas slow permeability zone was constructed. The grey correlation analysis method was used to determine the maximum correlation degree between the horizontal direction (the advancing direction of the working face) and vertical direction (perpendicular to the upward direction of the coal seam floor) fractal dimensions of the overburden gas slow permeability zone and the separation amount, the fracture density and the stress concentration coefficient. The results show that the overburden gas slow permeability zone is initially formed after the first periodic weighting. After each periodic weighting, the caving angle on both sides of the overburden gas slow permeability zone decreases continuously and the width and height increase continuously. Specifically, from the initial formation of the slow permeability zone to the full development of the slow permeability zone, the caving angles of the open-off cut side and the working face side of the slow permeability zone are reduced from 68.3° and 76.2° to 44.7° and 53.5° respectively. The width and height of the slow permeability zone increased from 16.3 m and 19.2 m to 52.1 m and 38.4 m respectively. According to the established division criterion and process of the overburden gas slow permeability zone, combined with the grey correlation analysis method, it is obtained that the variation of fractal dimension along the horizontal and vertical directions of the overburden gas slow permeability zone has the strongest correlation with the variation of the separation amount (r1=0.93,r1=0.91), and the accuracy of theoretical calculation is verified by experiments. Therefore, when the final hole (roadway) of pressure relief gas extraction borehole (roadway) is determined in the later stage, the boundary of the overburden gas slow permeability area can be judged by field observing the separation amount. The research results have certain guiding significance for accurate and efficient extraction of pressure relief gas in goaf.

  • [1]
    谢和平. 深部岩体力学与开采理论研究进展[J]. 煤炭学报,2019,44(5):1283−1305.

    XIE Heping. Research progress on mechanics and mining theory of deep rock mass[J]. Journal of China Coal Society,2019,44(5):1283−1305.
    [2]
    林海飞,李树刚,赵鹏翔,等. 我国煤矿覆岩采动裂隙带卸压瓦斯抽采技术研究进展[J]. 煤炭科学技术,2018,46(1):28−35.

    LIN Haifei,LI Shugang,ZHAO Pengxiang,et al. Research progress on pressure released gas drainage technology of mining cracking zone in overburden strata of coal mine in China[J]. Coal Science and Technology,2018,46(1):28−35.
    [3]
    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.
    [4]
    GHABRAIE B,REN G,SMITH J V. Characterising the multi-seam subsidence due to varying mining configuration, insights from physical modelling[J]. International Journal of Rock Mechanics and Mining Sciences,2017,93(3):269−279.
    [5]
    DAVID K,TIMMS W A,BARBOUR S L,et al. Tracking changes in the specific storage of overburden rock during longwall coal mining[J]. Journal of Hydrology,2017,553:304−320. doi: 10.1016/j.jhydrol.2017.07.057
    [6]
    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):466−469.

    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):466−469.
    [7]
    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. Coal mining and rock movement[J]. Journal of China Coal Society,2019,44(4):973−984.
    [8]
    YUAN Liang. Theory and practice of integrated coal production and gas extraction[J]. International Journal of Coal Science and Technology,2015,2(1):3−11. doi: 10.1007/s40789-015-0065-2
    [9]
    GUO Hua,YUAN Liang. An integrated approach to study of strata behaviour and gas flow dynamics and its application[J]. International Journal of Coal Science and Technology,2015,2(1):12−21. doi: 10.1007/s40789-015-0059-0
    [10]
    袁 亮,郭 华,沈宝堂,等. 低透气性煤层群煤与瓦斯共采中的高位环形裂隙体[J]. 煤炭学报,2011,36(3):357−365.

    YUAN Liang,GUO Hua,SHEN Baotang,et al. Circular overlying zone at longwall panel for efficient methane capture of mutiple coal seams with low permeability[J]. Journal of China Coal Society,2011,36(3):357−365.
    [11]
    杨 科,谢广祥. 采动裂隙分布及其演化特征的采厚效应[J]. 煤炭学报,2008,33(10):1092−1096.

    YANG Ke,XIE Guangxiang. Caving thickness effects on distribution and evolution characteristics of mining induced fracture[J]. Journal of China Coal Society,2008,33(10):1092−1096.
    [12]
    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 evolutionof mining fissure elliptic paraboloid zone and extraction coaland gas[J]. Journal of China Coal Society,2014,39(8):1455−1462.
    [13]
    李树刚,徐培耘,赵鹏翔,等. 采动裂隙椭抛带时效诱导作用及卸压瓦斯抽采技术[J]. 煤炭科学技术,2008,46(9):146−152.

    LI Shugang,XU Peiyun,ZHAO Pengxiang,et al. Aging induction and pressure relief gas extraction technology of mining-induced fracture ellipsoid strip[J]. Coal science and Technology,2008,46(9):146−152.
    [14]
    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.

    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.
    [15]
    赵鹏翔,刘李东,李树刚,等. 煤层倾角对仰斜综采工作面覆岩压实区演化规律的影响[J]. 煤炭科学技术,2021,49(11):65−72.

    ZHAO Pengxiang,LIU Lidong,LI Shugang,et al. Dip angle effect of evolution coal seam in overburden compacted area of fully mechanized mining face[J]. Coal Science and Technology,2021,49(11):65−72.
    [16]
    刘洪永,程远平,周红星,等. 综采长壁工作面推进速度对优势瓦斯通道的诱导与控制作用[J]. 煤炭学报,2015,40(4):809−815.

    LIU Hongyong,CHENG Yuanping,ZHOU Hongxing,et al. Induction and control effect of advancing speed of longwall working face in fully mechanized mining on dominant gas channel[J]. Journal of China Coal Society,2015,40(4):809−815.
    [17]
    伍永平,解盘石,任世广. 大倾角煤层开采围岩空间非对称结构特征分析[J]. 煤炭学报,2010,35(2):182−184.

    WU Yongping,XIE Panshi,REN Shiguang. Analysis of asymmetric structure around coal face of steeply dipping seam mining[J]. Journal of China Coal Society,2010,35(2):182−184.
    [18]
    LUO Shenghu,WANG Tong,WU Yongping,et al. Internal mechanism of asymmetric deformation and failure characteristics of the roof for longwall mining of a steeply dipping coal seam[J]. Archives of Mining Science,2021,66(1):101−124.
    [19]
    解盘石,屈利利,伍永平,等. 大倾角近距离煤层群长壁采场顶板破断机理[J]. 煤炭科学技术,2022,50(2):65−74.

    XIE Panshi,QU Lili,WU Yongping,et al. Roof breaking mechanism of longwall stope with steeply dipping contugous coal seam group[J]. Coal Science and Technology,2022,50(2):65−74.
    [20]
    ZHOU Shaoping,WU Kan,ZHOU Dawei,et al. Experimental Study on Displacement Field of Strata Overlying Goaf with Sloping Coal Seam[J]. Geotechnical and Geological Engineering,2016,34(6):1847−1856. doi: 10.1007/s10706-016-9993-x
    [21]
    XIE Heping,SANDERSON D J,PEACOCK D C P. A fractal model and energy dissipation for en echelon fractures[J]. Engineering Fracture Mechanics,1994,48(5):655−662. doi: 10.1016/0013-7944(94)90173-2
    [22]
    谢和平,于广明,杨 伦,等. 采动岩体分形裂隙网络研究[J]. 岩石力学与工程学报,1991,18(2):29−33.

    XIE Heping,YU Guangming,YANG Lun,et al. Research on the fractal effects of crack network in overburden rock stratnm[J]. Chinese Journal of Rock Mechanics and Engineering,1991,18(2):29−33.
    [23]
    DENG Guangdi,XIE Heping,GAO Mingzhong,et al. Numerical simulation on the evolution of mining-induced fracture network in a coal seam and its overburden under the top coal caving method[J]. Advances in Civil Engineering,2020,5:1−14.
    [24]
    周宏伟,张 涛,薛东杰,等. 长壁工作面覆岩采动裂隙网络演化特征[J]. 煤炭学报,2011,36(12):1957−1962.

    ZHOU Hongwei,ZHANG Tao,XUE Dongjie,et al. Evolution of mining-induced crack network in overburden strata of longwall face[J]. Journal of China Coal Society,2011,36(12):1957−1962.
    [25]
    WANG Cheng,ZHANG Nianchao,HAN Yafeng,et al. Experiment research on overburden mining-induced fracture evolution and its fractal characteristics in ascending mining[J]. Arabian Journal of Geosciences,2015,8(1):13−21. doi: 10.1007/s12517-013-1178-9
    [26]
    杨滨滨,袁世冲,郑德志,等. 近距离煤层重复采动覆岩裂隙时空演化特征研究[J]. 采矿与安全工程学报,2022,39(2):255−263.

    YANG Binbin,YUAN Shichong,ZHENG Dezhi,et al. Spatial and temporal characteristics of overburden fractures due to repeated mining in close distance coal seams[J]. Journal of Mining and Safety Engineering,2022,39(2):255−263.
    [27]
    赵毅鑫,令春伟,刘 斌,等. 浅埋超大采高工作面覆岩裂隙演化及能量耗散规律研究[J]. 采矿与安全工程学报,2021,38(1):9−18,30.

    ZHAO Yixin,LING Chunwei,LIU Bin,et al. Fracture evolution and energy dissipation of overlying strata in shallow-buried underground mining with ultra-high working face[J]. Journal of Mining and Safety Engineering,2021,38(1):9−18,30.
    [28]
    ZHAO Pengxiang,ZHUO Risheng,LI Shugang,et al. Fractal characteristics of gas migration channels at different mining heights[J]. Fuel,2019,271:479−487.
    [29]
    ZHAO Pengxiang,ZHUO Risheng,LI Shugang,et al. Fractal characteristics of methane migration channels in inclined coal seams[J]. Energy,2021,225:127−139.
    [30]
    ZHAO Pengxiang,WANG Jianan,LI Shugang,et al. Effects of recovery ratio on the fracture evolution of the overburden pressure-relief gas migration channel for a fully mechanized working face[J]. Natural Resources Research,2022,31(2):1011−1026. doi: 10.1007/s11053-021-09993-4
    [31]
    赵鹏翔,卓日升,李树刚,等. 综采工作面推进速度对瓦斯运移优势通道演化的影响[J]. 煤炭科学技术,2018,46(7):99−108.

    ZHAO Pengxiang,ZHUO Risheng,LI Shugang,et al. The influence of the speed of fully mechanized mining face on the evolution of the dominant channel of gas migration[J]. Coal Science and Technology,2018,46(7):99−108.
    [32]
    李宏艳,王维华,齐庆新,等. 基于分形理论的采动裂隙时空演化规律研究[J]. 煤炭学报,2014,39(6):1023−1031.

    LI Hongyan,WANG Weihua,QI Qingxin,et al. Study on fissure development rule of overlying strata influenced by mining based on fractal theory[J]. Journal of China Coal Society,2014,39(6):1023−1031.
    [33]
    郭明杰,郭文兵,袁瑞甫,等. 基于采动裂隙区域分布特征的定向钻孔空间位置研究[J]. 采矿与安全工程学报,2022,39(4):817−826.

    GUO Mingjie,GUO Wenbing,YUAN Ruifu,et al. Spatial location determination of directional boreholes based on regional distribution characteristics of mining-induced overburden fractures[J]. Journal of Mining and Safety Engineering,2022,39(4):817−826.
    [34]
    郭文兵,赵高博,白二虎. 煤矿高强度长壁开采覆岩破坏充分采动及其判据[J]. 煤炭学报,2020,45(11):3657−3666.

    GUO Wenbing,ZHAO Gaobo,BAI Erhu. Critical failure of overlying rock strata and its criteria induced by high-intensity longwall mining[J]. Journal of China Coal Society,2020,45(11):3657−3666.
    [35]
    钱鸣高, 石平五, 许家林. 矿山压力与岩层控制[M]. 徐州: 中国矿业大学出版社, 2015: 65−99.

    QIAN Minggao, SHI Pingwu, XU Jialin. Mine pressure and strata control[M]. Xuzhou: China University of Mining and Technology Press, 2015: 65−99.
    [36]
    郭文兵. 煤矿开采损害与保护[M]. 北京: 应急管理出版社, 2019: 1−8.

    GUO Wenbing. Coal mining damage and protection[M]. Beijing: Emergency Management Press, 2019: 1−8.
    [37]
    白利娜,曾家瑶,高 为. 基于灰色关联分析的盘关向斜煤层气有利井区优选[J]. 煤炭科学技术,2019,47(4):169−173.

    BAI Li’na,ZENG Jiayao,GAO Wei. Optimization of favorable well of CBM based on grey correlation analysis in Panguan syncline[J]. Coal Science and Technology,2019,47(4):169−173.
  • 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