构造应力作用下软岩隧洞大变形机理及控制技术
Large deformation mechanism and control technology of soft rock tunnel under tectonic stress
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摘要: 针对软岩地下工程围岩大变形的工程难题, 以海东隧洞某支洞为研究对象, 通过电子显微镜(SEM)对典型围岩微观孔隙特征进行分析, 建立了高预应力长短锚索协同支护力学模型, 结合现场围岩松动圈测试结果以及隧洞围岩压力计算, 确定并验证了长短锚索支护参数, 提出了适用于大变形段的高预应力长短锚索支护方案。进一步采用数值模拟方法, 系统分析了构造应力作用下围岩大变形及长短锚索协同支护机理。研究结果表明: 海东隧洞某支洞DLⅡ11+080断面围岩主要为钙质页岩, 裂隙发育、孔隙度高、结构疏松, 微观层状结构导致岩石脆弱, 易受外力作用破坏。单一长度短锚索无法对围岩进行有效支护, 采用长短锚索加强支护能够发挥协同作用, 其中短锚索主要减少初期塑性变形, 长锚索提供整体约束, 防止深部位移扩大。通过数值模拟研究了不同侧压力系数和不同黏聚力下围岩塑性区及收敛变形, 揭示了构造应力及围岩强度对隧洞变形的影响机制。优化后的长短锚索支护下拱顶塑性区深度相比无支护减少48.63%, 比6 m短锚索支护减少44.38%。长短锚索组合支护有效改善了轴力分布的均匀性, 提升了支护效果及围岩稳定性。本研究为软岩地下工程构造应力作用下大变形控制提供了科学依据和实践指导。Abstract: Large deformation of surrounding rock is a great challenging in soft rock underground engineering. We analyzed the microscopic and pore characteristics of typical surrounding rock using scanning electron microscopy (SEM) and established a mechanical model for high pre-stressed long and short anchor cables in a collaborative support system. By integrating test results of surrounding rock loose zones and calculations of surrounding rock pressure, the support parameters for long and short anchor cables are determined and verified. A suitable support scheme for large deformation sections using high pre-stressed long and short anchor cables is proposed. Additionally, numerical simulation techniques are employed to systematically analyze the large deformation of surrounding rock and the supporting mechanism of long and short anchor cables under tectonic stress. The results reveal that the surrounding rock of the DLII11 + 080 section of the branch tunnel of Haidong Tunnel is primarily composed of calcareous shale, characterized by developed fractures, high porosity, and a loose structure. The microscopic layered structure contributes to the rock's fragility, making it susceptible to external forces. Single-length short anchor cable support is ineffective in providing adequate reinforcement to the surrounding rock. However, the use of both long and short anchor cables enhances support by leveraging their synergistic effects. The short anchor cable primarily mitigates early plastic deformation, while the long anchor cable provides overall constraints to prevent the expansion of deep displacement. Through numerical simulations, the plastic zone and convergence deformation of surrounding rock are analyzed under varying lateral pressure coefficients and cohesion levels. The study also elucidates the influence of tectonic stress and surrounding rock strength on tunnel deformation. The results indicate that the depth of the vault plastic zone under the optimized long and short anchor cable support is 48.63% lower than without any support and 44.38% lower compared to support using 6-meter short anchor cables alone. The combined support of long and short anchor cables significantly enhances the uniformity of axial force distribution, improves the overall support effect, and stabilizes the surrounding rock. This research provides a scientific foundation and practical guidance for controlling large deformations under tectonic stress in soft rock underground engineering.
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