Coal Geology & Exploration
Abstract
Background In coal mines, fault structures serve as critical pathways for water inrushes from coal seam floors, posing serious threats to the production safety of mines. Delving into the permeability evolutionary patterns of fractured rock masses in fault zones under seepage-stress coupling holds great significance for the prevention and control of water inrushes along faults from coal seam floors.Methods Against the engineering background of the Gaohe Coal Mine under the Shanxi Lu’an Mining (Group) Co., Ltd. in Shanxi Province, this study analyzed the microscopic physical properties and the pore and fracture structures of a fractured rock mass in a fault zone initially. Then, using triaxial seepage tests, this study investigated the permeability evolutionary patterns of the fractured rock mass under cyclic loading and unloading, establishing the quantitative coupling relationship between the permeability coefficient and the confining pressure. Finally, based on the mechanical model analysis, this study constructed a numerical model for water inrushes along fault Fw159 in the Gaohe Coal Mine. Accordingly, the formation and evolution patterns of pathways for water inrushes from coal seam floors were analyzed. Results and Conclusions The pores and fractures in the fractured rock mass of the fault zone exhibited complex structures, rough edges, and non-directional development microscopically, and these characteristics governed the permeability of the rock mass. A negative exponential relationship was observed between the permeability coefficient and the confining pressure, with the variations in the seepage pressure playing a significant role in the displacement of the fractured zone in the floor and the formation of hydraulically conductive pathways. During coal mining, stress disturbance preceded the displacement effect, which became gradually pronounced after mining-induced stress peaked. As pore water pressure reached 3 MPa, confined water accumulated at the bottom of fault Fw159, migrating upward along the fractured zone of the fault until instability failure occurred. The results of this study reveal the inherent relationships between the permeability characteristics of fractured rock masses in fault zones and the water inrushes along faults from coal seam floors in coal mines, providing a theoretical basis for the prevention and control of water inrushes from coal seam floors and safe mining in coal mines.
Keywords
water hazard from floors, fractured rock mass, seepage-induced instability, fault-induced water inrush, fluid-structure interaction, Gaohe Coal Mine of Shanxi Lu’an Mining (Group) Co., Ltd.
DOI
10.12363/issn.1001-1986.25.03.0186
Recommended Citation
ZHAO Dekang, HAN Bing, ZENG Yifan,
et al.
(2025)
"Permeability evolutionary patterns of fractured rock masses in fault zones under seepage-stress coupling,"
Coal Geology & Exploration: Vol. 53:
Iss.
7, Article 15.
DOI: 10.12363/issn.1001-1986.25.03.0186
Available at:
https://cge.researchcommons.org/journal/vol53/iss7/15
Reference
[1] 武强. 我国矿井水防控与资源化利用的研究进展、问题和展望[J]. 煤炭学报,2014,39(5):795−805.
WU Qiang. Progress,problems and prospects of prevention and control technology of mine water and reutilization in China[J]. Journal of China Coal Society,2014,39(5):795−805.
[2] 曾一凡,朱慧聪,武强,等. 我国不同类别煤层顶板水害致灾机理与防控路径[J]. 煤炭学报,2024,49(3):1539−1555.
ZENG Yifan,ZHU Huicong,WU Qiang,et al. Disaster–causing mechanism and prevention and control path of different types of coal seam roof water disasters in China[J]. Journal of China Coal Society,2024,49(3):1539−1555.
[3] ZENG Yifan,MENG Shihao,WU Qiang,et al. Ecological water security impact of large coal base development and its protection[J]. Journal of Hydrology,2023,619:129319.
[4] 陆银龙. 渗流–应力耦合作用下岩石损伤破裂演化模型与煤层底板突水机理研究[D]. 徐州:中国矿业大学,2013.
LU Yinlong. Hydro–mechanical modeling of fracturing evolution in rocks and mechanism of water–inrush from coal seam floor[D]. Xuzhou:China University of Mining and Technology,2013.
[5] 李利平,李术才,石少帅,等. 基于应力–渗流–损伤耦合效应的断层活化突水机制研究[J]. 岩石力学与工程学报,2011,30(增刊1):3295−3304.
LI Liping,LI Shucai,SHI Shaoshuai,et al. Water inrush mechanism study of fault activation induced by coupling effect of stress–seepage–damage[J]. Chinese Journal of Rock Mechanics and Engineering,2011,30(Sup.1):3295−3304.
[6] ZENG Yifan,PANG Zhenzhong,WU Qiang,et al. Study of water–controlled and environmentally friendly coal mining models in an ecologically fragile area of northwest China[J]. Mine Water and the Environment,2022,41(3):802−816.
[7] YANG Weihong,ZENG Yifan,BAO Han,et al. Development of cement–based grouting material containing high polymer and high–water resistance[J]. Construction and Building Materials,2025,470:140660.
[8] ZENG Yifan,MEI Aoshuang,WU Qiang,et al. Double verification and quantitative traceability:A solution for mixed mine water sources[J]. Journal of Hydrology,2024,630:130725.
[9] 王珂,盛金昌,郜会彩,等. 应力–渗流侵蚀耦合作用下粗糙裂隙渗流特性研究[J]. 岩土力学,2020,41(增刊1):30−40.
WANG Ke,SHENG Jinchang,GAO Huicai,et al. Study on seepage characteristics of rough crack under coupling of stress–seepage erosion[J]. Rock and Soil Mechanics,2020,41(Sup.1):30−40.
[10] ZHU Zhende,NIU Zihao,QUE Xiangcheng,et al. Study on permeability characteristics of rocks with filling fractures under coupled stress and seepage fields[J]. Water,2020,12(10):2782.
[11] 林志南,冯世宏,张强,等. 高应力和高渗压下饱和完整砂岩三轴剪切–渗流耦合特性试验研究[J]. 中南大学学报(自然科学版),2023,54(6):2419−2430.
LIN Zhinan,FENG Shihong,ZHANG Qiang,et al. Experimental study of triaxial shear–seepage coupling characteristics of saturated intact sandstone under high stress and high seepage pressure[J]. Journal of Central South University (Science and Technology),2023,54(6):2419−2430.
[12] 黄书岭,冯夏庭,周辉,等. 水压和应力耦合下脆性岩石蠕变与破坏时效机制研究[J]. 岩土力学,2010,31(11):3441−3446.
HUANG Shuling,FENG Xiating,ZHOU Hui,et al. Study of aging failure mechanics and triaxial compression creep experiments with water pressure coupled stress of brittle rock[J]. Rock and Soil Mechanics,2010,31(11):3441−3446.
[13] MENG Shihao,WU Qiang,ZENG Yifan,et al. Enhancing mine groundwater system prediction:Full–process simulation of mining–induced spatio–temporal variations in hydraulic conductivities via modularized modeling[J]. International Journal of Mining Science and Technology,2024,34(12):1625−1642.
[14] MENG Shihao,WU Qiang,ZENG Yifan,et al. A novel method for in–situ monitoring and quantifying the dynamic responses of groundwater to the effects of mining[J]. Mine Water and the Environment,2024,43(2):382−398.
[15] 杨金保,冯夏庭,潘鹏志. 考虑应力历史的岩石单裂隙渗流特性试验研究[J]. 岩土力学,2013,34(6):1629−1635.
YANG Jinbao,FENG Xiating,PAN Pengzhi. Experimental study of permeability characteristics of single rock fracture considering stress history[J]. Rock and Soil Mechanics,2013,34(6):1629−1635.
[16] 寇苗苗. 卸荷渗流耦合作用下裂隙岩体破坏机理研究[D]. 重庆:重庆大学,2019.
KOU Miaomiao. Study on the failure mechanism of fractured rock masses under the coupled hydro–mechanical loading and unloading conditions[D]. Chongqing:Chongqing University,2019.
[17] 张磊,阚梓豪,薛俊华,等. 循环加卸载作用下完整和裂隙煤体渗透性演变规律研究[J]. 岩石力学与工程学报,2021,40(12):2487−2499.
ZHANG Lei,KAN Zihao,XUE Junhua,et al. Study on permeability law of intact and fractured coals under cyclic loading and unloading[J]. Chinese Journal of Rock Mechanics and Engineering,2021,40(12):2487−2499.
[18] 程智余,刘瑞,张金锋,等. 围压变化作用下基于水力开度变化的单裂隙渗流特性研究[J]. 现代地质,2023,37(4):972−976.
CHENG Zhiyu,LIU Rui,ZHANG Jinfeng,et al. Study on seepage mechanism characteristics of a single fracture based on fracture deformation under different confining pressures[J]. Geoscience,2023,37(4):972−976.
[19] 张纯旺. 废弃矿井采空区覆岩裂隙导通机理及多尺度渗流特性研究[D]. 太原:太原理工大学,2021.
ZHANG Chunwang. Formation mechanism and multi–scale seepage characteristics of overburden fracture in abandoned coal mine[D]. Taiyuan:Taiyuan University of Technology,2021.
[20] 曾一凡,孟世豪,武强,等. 天窗补给型衍生式矿井动力突水模式及其评价与治理技术[J]. 煤炭学报,2023,48(10):3776−3788.
ZENG Yifan,MENG Shihao,WU Qiang,et al. Derivative mine dynamic water inrush mode of skylight leakage and its evaluation and control technology system[J]. Journal of China Coal Society,2023,48(10):3776−3788.
[21] 曾一凡,梅傲霜,武强,等. 基于水化学场与水动力场示踪模拟耦合的矿井涌(突)水水源判识[J]. 煤炭学报,2022,47(12):4482−4494.
ZENG Yifan,MEI Aoshuang,WU Qiang,et al. Source discrimination of mine water inflow or inrush using hydrochemical field and hydrodynamic field tracer simulation coupling[J]. Journal of China Coal Society,2022,47(12):4482−4494.
[22] 曾一凡,于超,武强,等. 煤矿防治水“三区”划分方法及其水害防治意义[J]. 煤炭学报,2024,49(8):3605−3618.
ZENG Yifan,YU Chao,WU Qiang,et al. “Three zones” method for coal mine water hazard control and its significance[J]. Journal of China Coal Society,2024,49(8):3605−3618.
[23] 曾一凡,朱慧聪,武强,等. 我国不同类别煤层底板水害致灾机理与防控远景导向[J]. 煤炭学报,2025,50(2):1073−1099.
ZENG Yifan,ZHU Huicong,WU Qiang,et al. Disaster–causing mechanism and prevention and control vision orientation of different types of coal seam floor water disasters in China[J]. Journal of China Coal Society,2025,50(2):1073−1099.
[24] 张建民,李全生,曹志国,等. 采动渗流场分析方法[J]. 煤炭学报,2023,48(10):3628−3645.
ZHANG Jianmin,LI Quansheng,CAO Zhiguo,et al. Analysis method of mining seepage field[J]. Journal of China Coal Society,2023,48(10):3628−3645.
[25] 武强,朱斌,刘守强. 矿井断裂构造带滞后突水的流–固耦合模拟方法分析与滞后时间确定[J]. 岩石力学与工程学报,2011,30(1):93−104.
WU Qiang,ZHU Bin,LIU Shouqiang. Flow–solid coupling simulation method analysis and time identification of lagging water–inrush near mine fault belt[J]. Chinese Journal of Rock Mechanics and Engineering,2011,30(1):93−104.
[26] 尹尚先,王屹,尹慧超,等. 深部底板奥灰薄灰突水机理及全时空防治技术[J]. 煤炭学报,2020,45(5):1855−1864.
YIN Shangxian,WANG Yi,YIN Huichao,et al. Mechanism and full–time–space prevention and control technology of water inrush from Ordovician and thin limestone in deep mines[J]. Journal of China Coal Society,2020,45(5):1855−1864.
[27] DU Yanhui,LIU Weitao,MENG Xiangxi,et al. Effect of crack propagation on mining–induced delayer water inrush hazard of hidden fault[J]. Geofluids,2021,2021(1):6557578.
[28] 刘朋恩,刘文连,许汉华,等. 基于SEM及PCAS的白云岩溶蚀孔隙结构量化评价研究[J]. 地质灾害与环境保护,2023,34(1):59−63.
LIU Peng’en,LIU Wenlian,XU Hanhua,et al. Quantitative evaluation of dolomite dissolution pore structure based on SEM and PCAS[J]. Journal of Geological Hazards and Environment Preservation,2023,34(1):59−63.
[29] 马英建. 煤层底板隐伏断层岩体渗流–蠕变耦合特性及突水机理[D]. 徐州:中国矿业大学,2023.
MA Yingjian. Seepage–creep coupling properties and water inrush mechanism of hidden fault rock mass in coal seam floor[D]. Xuzhou:China University of Mining and Technology,2023.
[30] ZHANG Heng,LU Caiping,LIU Bin,et al. Numerical investigation on crack development and energy evolution of stressed coal–rock combination[J]. International Journal of Rock Mechanics and Mining Sciences,2020,133:104417.
[31] 王红梅,宁明诚,鲁海峰,等. 断层影响下煤层开采突水风险流固耦合数值模拟研究[J]. 煤炭技术,2024,43(1):180−184.
WANG Hongmei,NING Mingcheng,LU Haifeng,et al. Study on fluid–solid coupling numerical simulation of water inrush risk in coal seam mining under influence of fault[J]. Coal Technology,2024,43(1):180−184.
[32] 胡洋,董兵,郜卫煌,等. 基于流固耦合效应的岩层渗透系数演化规律与断层活化突水数值模拟研究[J]. 能源与环保,2023,45(1):162−167.
HU Yang,DONG Bing,GAO Weihuang,et al. Study on evolution law of rock permeability coefficient under influence of fluid structure coupling effect and numerical simulation of fault activated water inrush[J]. China Energy and Environmental Protection,2023,45(1):162−167.
[33] 邓思远,杨其新,蒋雅君,等. FLAC3D流固耦合渗流模型探讨[J]. 隧道建设,2016,36(2):179−185.
DENG Siyuan,YANG Qixin,JIANG Yajun,et al. Discussion on seepage model based on FLAC3D solid–fluid coupling[J]. Tunnel Construction,2016,36(2):179−185.
[34] WU Qiang,WANG Minyu,WU Xiong. Investigations of groundwater bursting into coal mine seam floors from fault zones[J]. International Journal of Rock Mechanics and Mining Sciences,2004,41(4):557−571.
[35] 武强,朱斌,李建民,等. 断裂带煤矿井巷滞后突水机理数值模拟[J]. 中国矿业大学学报,2008,37(6):780−785.
WU Qiang,ZHU Bin,LI Jianmin,et al. Numerical simulation of lagging water–inrush mechanism of rock roadways near fault zone[J]. Journal of China University of Mining & Technology,2008,37(6):780−785.
[36] LIU Xiaoxiu,ZENG Yifan,WU Qiang,et al. Ecological–based mining:A coal–water–thermal collaborative paradigm in ecologically fragile areas in western China[J]. Engineering,2024,38:209−222.
[37] MEI Aoshuang,WU Qiang,HAN Keyao,et al. Aquifer water abundance evaluation based on a variable weight model[J]. Mine Water and the Environment,2024,43(1):136−147.
Included in
Earth Sciences Commons, Mining Engineering Commons, Oil, Gas, and Energy Commons, Sustainability Commons