深井软岩巷道围岩裂隙时效演化规律及注浆强化时机

Time-dependent evolution of fractures in surrounding rock of deep underground soft rock roadways and optimal timing for grouting reinforcement

  • 摘要: 深井软岩巷道围岩裂隙时效演化规律直接影响滞后注浆加固技术的施作时机,但目前尚未明确建立滞后注浆时机与围岩裂隙时效演化进程之间的联系。为解决深井软岩巷道围岩滞后注浆强化时机定量表征问题,通过系统开展一系列深井软岩巷道围岩裂隙时序钻孔全景测试,获得了巷道围岩裂隙空间分布特征及时效演化规律,开展了考虑掘进扰动和流变效应的深井软岩巷道滞后注浆过程数值模拟,分析了不同注浆时机对巷道围岩稳定性的影响规律,提出了综合考虑巷道围岩变形及裂隙演化过程的最佳注浆时机确定方法,并进行了现场试验与效果验证。结果表明:深井软岩巷道围岩结构呈现“破碎区−裂隙区−完整区”的空间分布特征,裂隙平均线密度随时间呈现“先急速增长后趋于稳定”的演化规律,裂隙平均线密度增速拐点可作为滞后注浆加固关键时间节点;随着注浆时机滞后,深井软岩巷道最终变形呈现“先减小后增大”的趋势,在巷道滞后注浆过程中存在一个“最佳注浆时机”,使得围岩最终变形量最小。最佳注浆时机区间上限为巷道围岩移近率增速拐点,下限为裂隙线密度增速拐点,在最佳滞后时机区间实施注浆强化,能够有效降低深井软岩巷道围岩变形速率,而未及时注浆的巷道围岩移近率则持续增长。

     

    Abstract: The time-dependent evolution of fractures in surrounding rock of deep underground soft rock roadways directly influences the optimal timing for implementing delayed grouting reinforcement. However, the relationship between the delayed grouting timing and the time-dependent evolution of fractures remains unclear. To address the quantitative characterization of the delayed grouting timing, time-dependent borehole panoramic testing is systematically conducted to characterize the spatial distribution and the time-dependent evolution patterns of fractures. A numerical model of the delayed grouting process is established by incorporating excavation disturbance and rheological effects, and the influence of different grouting timings on roadway stability is analyzed. An optimal grouting timing determination method is proposed by comprehensively considering both the deformation and fracture evolution processes of the surrounding rock, with field validation conducted. The results indicate that the surrounding rock structure exhibits a characteristic spatial distribution of “fractured zone - fissured zone -intact zone”. The average fracture linear density shows an evolution pattern characterized by an initial rapid increase followed by stabilization. The inflection point in the growth rate of the average fracture linear density is identified as a critical temporal indicator for determining the delayed grouting timing. With the delay of grouting timing, the final deformation of the roadway shows a trend of first decreasing and then increasing. An “ optimal grouting timing” exists within the delayed grouting process that minimizes the final deformation of the surrounding rock. The upper limit of this optimal timing window is defined by the inflection point in the growth rate of displacement rate, while the lower limit is defined by the inflection point in the growth rate of average fracture linear density. Implementing grouting reinforcement within this optimal delayed timing window effectively reduces the deformation rate of the surrounding rock. In contrast, the displacement rate in roadways without timely grouting continues to increase.

     

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