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深部高承压水多层结构底板破坏机理及应用

Failure mechanism and application of deep high confined water multilayer structure floors

  • 摘要: 澄合矿区在高强度开采条件下矿井进入薄隔水层、带压系数高、构造复杂的深部采区,深部采区接续上一采空区布置工作面势必会加大底板破坏深度,破坏裂隙一旦导通含水层K2灰岩含水层与奥陶系灰岩水直接构成补给通道,将影响工作面的安全开采。为此,首先基于岩层地质结构特征,构建了4层结构底板塑性破坏力学模型,并进行了4种工况下的理论分析;然后模拟分析了工作面在重复采动影响下底板岩体位移场、应力场分布规律及塑性区发育特征;最后使用钻孔应变监测和压水试验方法在董家河煤矿23502工作面和23503采空区进行了底板破坏深度现场测试。结果表明:运用4层结构底板塑性滑移线场理论,按主动极限区深度划分23502工作面属于第3种工况,计算出最大破坏深度为18.32 m,23503工作面属于第2种工况,计算出最大破坏深度为15.83 m;数值模拟显示了在双面开采影响下底板的破坏深度显著增加,尤其是在临近煤柱区域下方,破坏深度最大可达18.5 m,高于单工作面15.8 m的破坏深度。面间煤柱受多重采动应力场影响,内部的弹性核区由单面开采的23 m减少到约14 m,煤柱两侧下方支承压力峰值始终处于高位,峰值系数最大高于单面开采的1.35倍。压水实测数据显示23503采空区底板最大破坏深度为15.85 m;钻孔应变监测数据显示23502工作面底板最大破坏深度为18.3 m。理论计算与数值模拟及现场实测结果较相一致,研究结果可为澄合矿区及其他相似矿区承压水体上开采煤层提供一定的指导意见。

     

    Abstract: Under the condition of high-intensity mining, the mine in Chenghe mining area enters the deep mining area with thin aquiclude, high pressure coefficient and complex structure. The arrangement of working face in the deep mining area following the previous goaf is bound to increase the depth of floor failure. Once the failure fracture is connected to the K2 limestone aquifer and the Ordovician limestone water, it will directly form a recharge channel, which will affect the safe mining of the working face.Firstly, based on the geological structure characteristics of rock strata, the plastic failure mechanical model of four layer structure floors is constructed, and the theoretical analysis under four working conditions is carried out. Then, the displacement field, stress field distribution law and plastic zone development characteristics of floor rock mass under the influence of repeated mining are simulated and analyzed. Finally, the field test of floor failure depth was carried out in 23502 working face and 23503 goaf of Dongjiahe Coal Mine by using borehole strain monitoring and water pressure test method.The results show that: Using the plastic slip line field theory of the four layer structure floors, according to the depth of the active limit zone, the 23502 working face belongs to the third working condition, and the maximum failure depth is 18.32 m. The 23503 working face belongs to the second working condition, and the maximum failure depth is 15.83 m. Numerical simulation shows that the failure depth of the floor increases significantly under the influence of double-sided mining, especially under the adjacent coal pillar area, the maximum failure depth can reach 18.5 m, which is higher than the failure depth of 15.8 m in the single working face. Under the influence of multiple mining stress fields, the internal elastic core area is reduced from 23 m of single-sided mining to about 14 m. The peak abutment pressure under both sides of the coal pillar is always at a high level, and the maximum peak coefficient is 1.35 times higher than that of single-sided mining. The measured data of pressurized water show that the maximum failure depth of the floor of the 23503 goaf is 15.85 m; the drilling strain monitoring data show that the maximum failure depth of the floor of the 23502 working face is 18.3 m. The results of theoretical calculation are consistent with those of numerical simulation and field measurement. The research results can provide some guidance for the mining of coal seams on confined water bodies in Chenghe mining area and other similar mining areas.

     

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