Advance Search

RAN Qican,LIANG Yunpei,ZOU Quanle,et al. Asymmetric characteristics of “three-field” in overburden of inclined coal seam groups and target extraction mechanism[J]. Coal Science and Technology,2024,52(4):177−192

. DOI: 10.12438/cst.2024-0068
Citation:

RAN Qican,LIANG Yunpei,ZOU Quanle,et al. Asymmetric characteristics of “three-field” in overburden of inclined coal seam groups and target extraction mechanism[J]. Coal Science and Technology,2024,52(4):177−192

. DOI: 10.12438/cst.2024-0068

Asymmetric characteristics of “three-field” in overburden of inclined coal seam groups and target extraction mechanism

Funds: 

National Natural Science Foundation of China (52174166); National Key Research and Development Program of China (2022YFC3004704); Chongqing Graduate Research Innovation Funding Project (CYB23031)

More Information
  • Received Date: December 29, 2023
  • Available Online: April 15, 2024
  • The three-field (stress, displacement and fracture field) evolution laws of the inclined coal seam group are complex, which are important for the transport and storage of pressure-relief gas. In order to investigate the three-field evolution law of inclined coal seam group, the study carried out a similar simulation experiment of multiple mining in inclined coal seam group with the 1930 coal mine in Xinjiang as an object. The collapse pattern of the overlying strata was analyzed, the stress evolution characteristics of overlying strata was obtained, the overlying strata displacement distribution and movement direction characteristics were analyzed, and the characteristics of mining-induced fracture distribution were elucidated. The influence of the three-field evolution law on gas migration was further investigated, and a directional borehole gas extraction field test was carried out for veri-fication. The study results shown that, the rectangular ladder platform of mining-induced fracture shown obvious asymmetric characteristics under multiple mining of inclined coal seam group. The overlying strata stress of the lower side was more variable, and the pressure-relief effect was more obvious with increasing mining frequency, while the overlying strata stress of the higher side was less variable. Combined with the gravity-dip effect, the overlying strata of the higher side was more prone to be damaged, and the collapse order was preferred with asymmetric characteristics. The displacement distribution of overlying strata was asymmetric, with significant displacement on the high side and large changes in the movement direction. The frequency of mining-induced fractures in the high side fractured area was significantly higher than that in the low side. The high side fracture area had more fracture distribution and fracture aperture was bigger. The mining-induced fractures shown the asymmetric characteristics of “high expansion-low compression”. The multiple mining made the asymmetric characteristics of three-field more significant. In addition, there was a “slow decreasing-fast decreasing” in the overlying strata penetration. Based on the relationship between three-field evolution characteristics and gas mi-gration, the mechanism of preferential gas extraction targeting was revealed. Combined with the experimental results, the process of determining the target area for gas extraction in the fractured zone based on the three-field evolution law was constructed. The gas extraction effect in the field was great, which ensured the safe and efficient recovery of the working face. The results of this study provide a theoretical reference for the accurate extraction of pressure-relief gas in the inclined coal seam group, aiming to improve the gas extraction from the inclined coal seam group, prevent gas overlimit in the upper corner, and achieve safe and efficient mining of the inclined coal seam group.

  • [1]
    邹全乐,王 鑫,李左媛,等. 木质素磺酸钙对固井水泥石变形破坏特性的影响及其改性机制[J]. 煤炭学报,2023,48(4):1606−1621.

    ZOU Quanle,WANG Xin,LI Zuoyuan,et al. Effect of calcium lignosulfonate on the deformation and failure characteristics of cementing stone and its modification mechanism[J]. Journal of China Coal Society,2023,48(4):1606−1621.
    [2]
    李树刚,张静非,林海飞,等. 双碳战略中煤气共采技术发展路径的思考[J]. 煤炭科学技术,2024,52(1):138−153.

    LI Shugang,ZHANG Jingfei,LIN Haifei,et al. Thoughts on the development path of coal and gas co-mining technology in dual carbon strategy[J]. Coal Science and Technology,2024,52(1):138−153.
    [3]
    赵佳佳,田世祥,李 鹏,等. SiO2-H2O纳米流体强化煤尘润湿性的微观机理研究[J]. 化工学报,2023,74(9):3931−3945.

    ZHAO Jiajia,TIAN Shixiang,LI Peng,et al. Microscopic mechanism of SiO2-H2O nanofluids to enhance the wettability of coal dust[J]. CIESC Journal,2023,74(9):3931−3945.
    [4]
    李树刚,徐培耘,林海飞,等. 倾斜煤层卸压瓦斯导流抽采技术研究与工程实践[J]. 采矿与安全工程学报,2020,37(5):1001−1008.

    LI Shugang,XU Peiyun,LIN Haifei,et al. Technology research and engineering practice of pressure-relief gas diversion extraction in inclined coal seams[J]. Journal of Mining & Safety Engineering,2020,37(5):1001−1008.
    [5]
    孙东玲,梁运培,黄旭超,等. 新疆大倾角多煤组煤矿区煤层气开发利用进展与前景[J]. 煤炭科学技术,2023,51(S1):162−172.

    SUN Dongling,LIANG Yunpei,HUANG Xuchao,et al. Progress and prospects of coalbed methane development and utilization in coal mining areas with large dip angle and multiple coal groups in Xinjiang[J]. Coal Science and Technology,2023,51(S1):162−172.
    [6]
    梁运培,朱拴成,陈 亮,等. 倾斜碎软煤层群煤层气协调开发关键技术:以艾维尔沟矿区为例[J]. 煤炭科学技术,2024,52(1):211−220.

    LIANG Yunpei,ZHU Shuancheng,CHEN Liang,et al. Key technologies for coordinated development of coalbed methane in inclined soft coal seam groups:a case study of Aiweigou Mining Area[J]. Coal Science and Technology,2024,52(1):211−220.
    [7]
    伍永平,闫壮壮,罗生虎,等. 煤岩组合体应力传递与强度特征倾角效应[J]. 煤炭科学技术,2023,51(1):105−116.

    WU Yongping,YAN Zhuangzhuang,LUO Shenghu,et al. Dip effect of stress transfer and structural instability mechanism of coal-rock combination[J]. Coal Science and Technology,2023,51(1):105−116.
    [8]
    叶春烽,谢和平,李存宝. 直接剪切下页岩的各向异性破坏特征和强度预测模型[J]. 工程科学与技术,2024,56(2):257−267.

    YE Chunfeng,XIE Heping,LI Cunbao. Anisotropic failure characteristics and strength prediction model of shale under direct shear[J]. Advanced Engineering Sciences,2024,56(2):257−267.
    [9]
    LI Yang,REN Yuqi,PENG Syd S,et al. Measurement of overburden failure zones in close-multiple coal seams mining[J]. International Journal of Mining Science and Technology,2021,31(1):43−50. doi: 10.1016/j.ijmst.2020.12.009
    [10]
    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 relievedmethane in goaf of high outburst mine[J]. Journal of China Coal Society,2021,46(11):3565−3577.
    [11]
    解盘石,张颖异,张艳丽,等. 大倾角大采高煤矸互层顶板失稳规律及对支架的影响[J]. 煤炭学报,2021,46(2):344−356.

    XIE Panshi,ZHANG Yingyi,ZHANG Yanli,et al. Study on the instability law of the coal-rock interbedded roof and its influence on supports in large mining height stope with steeply dipping coal seam[J]. Journal of China Coal Society,2021,46(2):344−356.
    [12]
    罗生虎,王 同,伍永平,等. 大倾角煤层群长壁开采承载拱与间隔岩层采动应力演化特征[J]. 煤炭学报,2023,48(2):551−562.

    LUO Shenghu,WANG Tong,WU Yongping,et al. Evolution characteristics of mining stress of bearing arch and interval strata in longwall mining of steeply dipping coal seam groups[J]. Journal of China Coal Society,2023,48(2):551−562.
    [13]
    来兴平,代晶晶,李 超. 急倾斜煤层开采覆岩联动致灾特征分析[J]. 煤炭学报,2020,45(1):122−130.

    LAI Xingping,DAI Jingjing,LI Chao. Analysis on hazard characteristics of overburden structure in steeply inclined coal seam[J]. Journal of China Coal Society,2020,45(1):122−130.
    [14]
    LIU Weitao,MU Dianrui,XIE Xiangxiang,et al. Sensitivity analysis of the main factors controlling floor failure depth and a risk evaluation of floor water inrush for an inclined coal seam[J]. Mine Water and the Environment,2018,37(3):636−648. doi: 10.1007/s10230-017-0497-6
    [15]
    高喜才,伍永平,曹沛沛,等. 大倾角煤层变角度综放工作面开采覆岩运移规律[J]. 采矿与安全工程学报,2016,33(3):381−386.

    GAO Xicai,WU Yongping,CAO Peipei,et al. Overlying strata movement property of fully mechanized caving angle-varied workface in steep dipping seam[J]. Journal of Mining & Safety Engineering,2016,33(3):381−386.
    [16]
    解盘石,田双奇,段建杰. 大倾角伪俯斜采场顶板运移规律实验研究[J]. 煤炭学报,2019,44(10):2974−2982.

    XIE Panshi,TIAN Shuangqi,DUAN Jianjie. Experimental study on the movement law of roof in pitching oblique mining area of steeply dipping seam[J]. Journal of China Coal Society,2019,44(10):2974−2982.
    [17]
    ZHAO Pengxiang,ZHUO Risheng,LI Shugang,et al. Research on the effect of coal seam inclination on gas migration channels at fully mechanized coal mining face[J]. Arabian Journal of Geosciences,2019,12(18):597. doi: 10.1007/s12517-019-4742-0
    [18]
    王智民,梁运培,邹全乐,等. 多重采动下大倾角上覆煤岩移动及地面井变形规律[J]. 煤炭科学技术,2023,51(4):47−55.

    WANG Zhimin,LIANG Yunpei,ZOU Quanle,et al. Movement of overlying rock and deformation law of surface well under multiple mining with large dip angle[J]. Coal Science and Technology,2023,51(4):47−55.
    [19]
    解盘石,黄宝发,伍永平,等. 大倾角大采高采场覆岩应力路径时空效应[J/OL]. 煤炭学报:1−14[2023-12-20]. https://doi.org/10.13225/j.cnki.jccs.2022.1859.

    XIE Panshi,HUANG Baofa,WU Yongping,Time-space effect of overburden stress path in steeply dipping and large mining height stope[J/OL]. Journal of China Coal Society,1−14[2023-12-20]. https://doi.org/10.13225/j.cnki.jccs.2022.1859.
    [20]
    伍永平,解盘石,贠东风,等. 大倾角层状采动煤岩体重力-倾角效应与岩层控制[J]. 煤炭学报,2023,48(1):100−113.

    WU Yongping,XIE Panshi,YUN Dongfeng,et al. Gravity-dip effect and strata control in mining of the steeply dipping coal seam[J]. Journal of China Coal Society,2023,48(1):100−113.
    [21]
    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.
    [22]
    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.
    [23]
    解盘石,张颖异,LUO Yi ,等. 基于开采损害预计的大倾角多区段采场顶板运移规律实验研究[J]. 采矿与安全工程学报,2020,37(6):1188−1195.

    XIE Panshi,ZHANG Yingyi,LUO Yi,et al. Roof deformation of multi-section mining with steeply dipping coal seam based on mining damage prediction[J]. Journal of Mining & Safety Engineering,2020,37(6):1188−1195.
    [24]
    陆卫东,程健维. 基于岩层移动计算的工作面覆岩体渗透率变化研究[J]. 采矿与安全工程学报,2018,35(1):118−124.

    LU Weidong,CHENG Jianwei. Study on the permeability change of overlying strata based on strata movement calculations[J]. Journal of Mining & Safety Engineering,2018,35(1):118−124.
    [25]
    RAN Qican,LIANG Yunpei,ZOU Quanle,et al. Characteristics of mining-induced fractures under inclined coal seam group multiple mining and implications for gas migration[J]. Natural Resources Research,2023,32(3):1481−1501. doi: 10.1007/s11053-023-10199-z
    [26]
    ZHANG Bichuan,SUN Haitao,LIANG Yunpei,et al. Characterization and quantification of mining-induced fractures in overlying strata:implications for coalbed methane drainage[J]. Natural Resources Research,2020,29(4):2467−2480. doi: 10.1007/s11053-019-09600-7
    [27]
    刘应科. 远距离下保护层开采卸压特性及钻井抽采消突研究[J]. 煤炭学报,2012,37(6):1067−1068.

    LIU Yingke. Study on the depressurization effect produced by exploitation of lower distant protective coal seam and elimination of outburst hazard of the protected seams by applying gas drainage with surface boreholes[J]. Journal of China Coal Society,2012,37(6):1067−1068.
    [28]
    ZHAO Pengxiang,ZHUO Risheng,LI Shugang,et al. Analysis of advancing speed effect in gas safety extraction channels and pressure-relief gas extraction[J]. Fuel,2020,265:116825. doi: 10.1016/j.fuel.2019.116825
    [29]
    黄庆享,曹 健. 浅埋近距煤层开采三场演化规律及煤柱群结构控制效应[J]. 煤炭学报,2021,46(S1):1−9.

    HUANG Qingxiang,CAO Jian. Research on three-field evolution and control effect of pillars structural in shallow buried closely spaced multi-seams mining[J]. Journal of China Coal Society,2021,46(S1):1−9.
    [30]
    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 bore holes based on regional distribution characteristics of mining-induced overburden fractures[J]. Journal of Mining & Safety Engineering,2022,39(4):817−826.
    [31]
    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
    [32]
    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. Study on the mechanism of cross-fusion in gas transportation-storage area in fully mechanized mining face of high gas thick coal seam under different advancing speed[J]. Journal of China Coal Society,2023,48(9):3405−3419.
    [33]
    李树刚,刘李东,赵鹏翔,等. 倾斜厚煤层卸压瓦斯靶向区辨识及抽采关键技术[J]. 煤炭科学技术,2023,51(8):105−115.

    LI Shugang,LIU Lidong,ZHAO Pengxiang,et al. Key technologies for extraction and identification of gas target area for pressure relief in inclined thick coal seam[J]. Coal Science and Technology,2023,51(8):105−115.
    [34]
    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.
    [35]
    王家臣,许家林,杨胜利,等. 煤矿采场岩层运动与控制研究进展−纪念钱鸣高院士“砌体梁”理论40年[J]. 煤炭科学技术,2023,51(1):80−94.

    WANG Jiachen,XU Jialin,YANG Shengli,et al. Development of strata movement and its control in underground mining:In memory of 40 years of Voussoir Beam Theory proposed by Academician Minggao Qian[J]. Coal Science and Technology,2023,51(1):80−94.
  • Related Articles

    [1]LIU Ting, ZHAI Cheng, TONG Xiaozhang, XU Hexiang, ZOU Quanle, LIN Baiquan, XU Jizhao. Technology of cavity completion in surface cluster wells for assisting rock cross-cut coal uncovering in high outburst coal seam[J]. COAL SCIENCE AND TECHNOLOGY, 2025, 53(5): 144-157. DOI: 10.12438/cst.2024-0699
    [2]WANG Fangtian, LI Zhe, ZHANG Cun, HE Dongsheng, ZHANG Yang. Temporal and spatial evolution mechanism of large-diameter borehole pressurerelief and permeable gas seepage in high gas coal seam[J]. COAL SCIENCE AND TECHNOLOGY, 2024, 52(S1): 47-61. DOI: 10.12438/cst.2023-0530
    [3]LIU Ting, LIN Baiquan, ZHAO Yang, ZHAI Cheng, ZOU Quanle. Precise permeability enhancement technique with hydraulic flushing for coal seams with non-uniformly distributed gas[J]. COAL SCIENCE AND TECHNOLOGY, 2023, 51(2): 217-231. DOI: 10.13199/j.cnki.cst.2022-0969
    [4]LI Shuqing, TANG Zhu, HUANG Fei, LI Bo, CAI Kangxu, LIU Cheng, DUAN Rong, ZHU Yanping, YANG Dangzhen. Application and Mechanism on pressure relief and permeability enhancement of diamond beaded wire saw cutting in low-permeability coal seam[J]. COAL SCIENCE AND TECHNOLOGY, 2021, 49(5): 83-90.
    [5]WANG Liang, LIAO Xiaoxue, CHU Peng, ZHANG Xiaolei, LIU Qingquan. Study on mechanism of permeability improvement for gas drainage by cross-seam cavitation borehole[J]. COAL SCIENCE AND TECHNOLOGY, 2021, 49(5): 75-82.
    [6]QIN Guicheng, LI Yang, SHU Longyong. Investigation and experimentation research on extraction radius of segmented hydraulic cavitation borehole in mining-coalbed[J]. COAL SCIENCE AND TECHNOLOGY, 2020, 48(8): 106-113.
    [7]CAO Yunxing, TIAN Lin, FAN Yanchang, LIU Jianzhong, ZHANG Shuai. Study on cracking ring form of carbon dioxide gas phase fracturing in low permeability coal seam[J]. COAL SCIENCE AND TECHNOLOGY, 2018, (6).
    [8]Wang Liang Chen Dapeng Guo Pinkun Zhang Rui, . Permeability characteristics of deep coal seam and pressure relief technologies of the key first mined coal seam[J]. COAL SCIENCE AND TECHNOLOGY, 2017, (6).
    [9]He Chao. Gas control of low gas permeability seam based on deep borehole fracturing and permeability improved technology with carbon dioxide[J]. COAL SCIENCE AND TECHNOLOGY, 2017, (6).
    [10]Sun Wenzhong. High efficient gas drainage principle and application of low permeable seam with CO _2 pre-fracturing and permeability improvement[J]. COAL SCIENCE AND TECHNOLOGY, 2017, (1).

Catalog

    Article views (170) PDF downloads (52) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return