ZHANG Yujun,LI Youwei,XIAO Jie,et al. Pre-splitting weakening failure characteristics of hard overburden and height control mechanism of water-conducting fracture zone[J]. Coal Science and Technology,2024,52(4):105−118
. DOI: 10.12438/cst.2023-1618Citation: |
ZHANG Yujun,LI Youwei,XIAO Jie,et al. Pre-splitting weakening failure characteristics of hard overburden and height control mechanism of water-conducting fracture zone[J]. Coal Science and Technology,2024,52(4):105−118 . DOI: 10.12438/cst.2023-1618 |
In order to address the issue of high development of hard overlying rock water-conducting fracture zones in deep coal mining and achieve water-preserved coal mining by reducing the height of water-conducting fracture zones, a new method is proposed in this study, which combines the techniques of pre-fracturing and weakening of hard main controlling overlying strata. This study comprehensively investigates the modification effect of pre-fracturing and weakening of hard main controlling overlying strata through laboratory experiments, theoretical analysis, and numerical simulation. The control mechanisms of different weakening layers on water-conducting fracture zones are elaborated and validated through field measurements. The results demonstrate that pre-existing fractures can induce the rock mass to shift its failure mode from intact rock fracturing to tension-shear failure controlled by pre-existing fractures, leading to a reduction in the severity of rock mass failure. The weakening effect of pre-existing fractures on the hard rock mass is revealed, and the damage variables coupled with stress and fractures are calculated. The relationship between the degree of weakening and the transformation of rock properties is qualitatively analyzed. It is found that the energy storage capacity of the rock mass is reduced while the dissipation capacity is enhanced after the modification. Numerical simulations are conducted to evaluate the control effect of different weakening layers on water-conducting fracture zones. By comparing the dynamic evolution of overlying rock failure modes, fracture counts, and failure heights, it is observed that the “saddle-shaped” failure mode gradually weakens with the increase of weakening layer height, and the evolution trend of fracture counts follows a pattern of “slow increase-sudden increase”. The dynamic evolution of failure height for unweakened and moderately to highly weakened overlying strata approximately exhibits an “S” shape, while the moderately weakened overlying strata exhibit a “semi-ejection” shape. Based on the analysis of the characteristics of failure in hard rock layers at different positions, the mechanisms of controlling the development of water-conducting fracture zones by different pre-fracturing weakening layers are revealed. Furthermore, using the borehole measurement method, the development height of the “two zones” under the condition of top plate fracturing in Mengcun mine is obtained. It is observed that the fracture extraction ratio is reduced under the condition of pre-fracturing weakening, thus preliminarily validating the inhibitory effect of top plate pre-fracturing weakening on the development of water-conducting fracture zones.It provides theoretical and scientific basis for coupling disaster prevention and control, water resources and ecological protection.
[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 Qing. 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] |
刘 洋,杨 建,周建军. 蒙陕深埋矿区工作面涌水量全生命周期演化规律[J]. 煤田地质与勘探,2022,50(12):152−158. doi: 10.12363/issn.1001-1986.22.03.0136
LIU Yang,YANG Jian,ZHOU Jianjun. Evolution law of water inflow in full life cycle of working face in deep buried Inner Mongolia-Shaanxi mining area[J]. Coal Geology & Exploration,2022,50(12):152−158. doi: 10.12363/issn.1001-1986.22.03.0136
|
[3] |
张玉军,张志巍. 煤层采动覆岩破坏规律与控制技术研究进展[J]. 煤炭科学技术,2020,48(11):85−97.
ZHANG Yujun,ZHANG Zhiwei. Research progress of mining overlying stratas failure law and control technology[J]. Coal Science and Technology,2020,48(11):85−97.
|
[4] |
杜文刚,柴 敬,张丁丁,等. 采动覆岩导水裂隙发育光纤感测与表征模型试验研究[J]. 煤炭学报,2021,46(5):1565−1575.
DU Wengang,CHAI Jing,ZHANG Dingding,et al. Optical fiber sensing and characterization of water flowing frac-ture development in mining overburden[J]. Journal of China Coal Society,2021,46(5):1565−1575.
|
[5] |
张东升,范钢伟,张世忠,等. 保水开采覆岩等效阻水厚度的内涵、算法与应用[J]. 煤炭学报,2022,47(1):128−136.
ZHANG Dongsheng,FAN Gangwei,ZHANG Shizhong,et al. Equivalent water-resisting overburden thickness for water-conservation mining:Conception,method and application[J]. Journal of China Coal Society,2022,47(1):128−136.
|
[6] |
黄庆享,赖锦琪. 条带充填保水开采隔水岩组力学模型研究[J]. 采矿与安全工程学报,2016,33(4):592−596.
HUANG Qingxiang,LAI Jinqi. Study on mechanical model of water-barrier rock formation for strip filling and water retention[J]. Journal of Mining and Safety Engineering,2016,33(4):592−596.
|
[7] |
张文泉,刘海林,赵 凯. 厚松散层薄基岩条带开采地表沉陷影响因素研究[J]. 采矿与安全工程学报,2016,33(6):1065−1071.
ZHANG Wenquan,LIU Hailin,ZHAO Kai. Study on influencing factors of surface subsidence in mining of thin bedrock strips with thick loose layer[J]. Journal of Mining and Safety Engineering,2016,33(6):1065−1071.
|
[8] |
张吉雄,张 强,巨 峰,等. 深部煤炭资源采选充绿色化开采理论与技术[J]. 煤炭学报,2018,43(2):377−389.
ZHANG Jixiong,ZHANG Qiang,JU Feng,et al. Theory and technique of greening mining integrating mining,separating and backfilling indeep coal resources[J]. Journal of China Coal Society,2018,43(2):377−389.
|
[9] |
杨艳国,王 军,于永江. 河下多煤层安全开采顺序对导水裂隙带高度的影响[J]. 煤炭学报,2015,40(S1):27−32.
YANG Yanguo,WANG Jun,YU Yongjiang. Effects of different coal safe mining sequence under river on height of water flowing fracture zone[J]. Journal of China Coal Society,2015,40(S1):27−32
|
[10] |
杨俊哲. 浅埋坚硬厚煤层预采顶分层综放技术研究[J]. 煤炭学报,2017,42(5):1108−1116.
YANG Junzhe. Research on fully mechanized caving mining technology of pre mining top slicing in shallow hard coal seam[J]. Journal of China Coal Society,2017,42(5):1108−1116.
|
[11] |
余学义, 穆 驰, 李剑锋. 孟巴矿强含水体下分层开采覆岩导水裂隙带发育规律[J]. 煤炭学报, 2022, 47(S1): 29−38.
YUN Xueyi, MU Chi, LI Jianfeng. Developement law of wa-ter-conducting fracture zone in overlying rock with layered mining under strong water-bearing body in Barapukuria coal mine.[J]. Journal of China Coal Society, 2022, 47(S1): 29−38.
|
[12] |
许家林,秦 伟,轩大洋,等. 采动覆岩卸荷膨胀累积效应[J]. 煤炭学报,2020,45(1):35−43.
XU Jialin,QIN Wei,XUAN Dayang,et al. Accumulative effect of overburden strata expansion induced by stressre-lief[J]. Journal of China Coal Society,2020,45(1):35−43.
|
[13] |
李江华,王东昊,黎 灵,等. 不同覆岩类型高强度采动裂隙发育特征对比研究[J]. 煤炭科学技术,2021,49(10):9−15.
LI Jianghua,WANG Donghao,LI Ling,et al. Comparative study on development characteristics of high-intensive min-ing fissures in different overburden types[J]. Coal Science and Technology,2021,49(10):9−15.
|
[14] |
曹祖宝,王庆涛. 基于覆岩结构效应的导水裂隙带发育特征[J]. 煤田地质与勘探,2020,48(3):145−151.
CAO Zubao,WANG Qingtao. Development characteristics of water conducted fracture zone based on overburden structural effect[J]. Coal Geology & Exploration,2020,48(3):145−151.
|
[15] |
张玉军,申晨辉,张志巍,等. 我国厚及特厚煤层高强度开采导水裂缝带发育高度区域分布规律[J]. 煤炭科学技术,2022,50(5):38−48.
ZHANG Yujun,SHEN Chenhui,ZHANG Zhiwei,et al. Regional distribution law of water-conducting fractured zoneheight in high-strength mining of thick and extra-thick coal seams in China[J]. Coal Science and Technology,2022,50(5):38−48.
|
[16] |
黄炳香,赵兴龙,陈树亮,等. 坚硬顶板水压致裂控制理论与成套技术[J]. 岩石力学与工程学报,2017,36(12):2954−2970.
HUANG Bingxiang,ZHAO Xinglong,CHEN Shuliang,et al. Theory and technology of controlling hard roof with hydraulic fracturing in underground mining[J]. Chinese Journal of Rock Mechanics and Engineering,2017,36(12):2954−2970.
|
[17] |
康红普,冯彦军. 定向水力压裂工作面煤体应力监测及其演化规律[J]. 煤炭学报,2012,37(12):1953−1959.
KANG Hongpu,FENG Yanjun. Monitoring of stress change in coal seam caused by directional hydraulicfracturing in working face with strong roof and its evolution[12]. Journal of China Coal Society,2012,37(12):1953−1959.
|
[18] |
康红普,张 镇,黄志增. 我国煤矿顶板灾害的特点及防控技术[J]. 煤矿安全,2020,51(10):24−33,38.
KANG Hongpu,ZHANG Zhen,HUANG Zhizeng. Characteristics of roof disasters and controlling techniques of coal mine in China[J]. Safety in Coal Mines,2020,51(10):24−33,38.
|
[19] |
于 斌,高 瑞,孟祥斌,等. 大空间远近场结构失稳矿压作用与控制技术[J]. 岩石力学与工程学报,2018,37( 5):1134−1145.
YU Bin,GAO Rui,MENG Xiangbin,et al. Large-space near-field structure instability ore pressure action and control technology[J]. Journal of Rock Mechanics and Engineering,2018,37(5):1134−1145.
|
[20] |
于 斌,高 瑞,夏彬伟,等. 大空间坚硬顶板地面压裂技术与应用[J]. 煤炭学报,2021,46(3):800−811.
YU Bin,GAO Rui,XIA Binwei,et al. Ground fracturing technology and application of hard roof in large space[J]. Journal of China Coal Society,2021,46(3):800−811.
|
[21] |
潘俊锋, 康红普, 闫耀东, 等. 顶板“人造解放层”防治冲击地压方法、机理及应用[J]. 煤炭学报,2023,48(2):636−648.
PAN Junfeng, KANG Hongpu, YAN Yaodong, et al. The method, mechanism and application of preventing rock burst by artificial liberation layer of roof[J]. Journal of China Coal Society,2023,48(2):636−648.
|
[22] |
高富强. 工作面坚硬顶板水力压裂对采动应力影响的数值模拟研究[J]. 采矿与岩层控制工程学报,2021,3(2):23−32.
GAO Fuqiang. Influence of hydraulic fracturing of strong roof on mining-induced stress-insight from numerical simulation[J]. Journal of Mining and Strata Control Engineering,2021,3(2):23−32.
|
[23] |
HUANG C Y,SUBHASH G,VITTON S J. A dynamic damage growth model for uniaxial compressive response of rock aggregates. Mechanics of Materials,2002,34(5):267−277.
|
[24] |
楼志文. 损伤力学基础[M]. 西安:西安交通大学出版社,1991.
|
[25] |
徐芝纶. 弹性力学−上册[M]. 4版. 北京:高等教育出版社,2006:3−20.
|