顶盾一体类矩形隧道环缝抗剪机制研究

Shear mechanism of circumferential joint in pipe jacking and shield integrated quasi-rectangular tunnel

  • 摘要: 针对顶盾一体类矩形隧道结构在复杂地层中因纵向刚度差异引发的不均匀变形问题,通过环缝剪切试验与理论分析,系统研究不同环缝界面的抗剪机制与剪切刚度特性。以上海市轨道交通12号线西延伸工程为背景,选取3类典型环缝界面,设计剪切试验以模拟不同纵向力工况下环缝的剪切行为,揭示环缝错台量随荷载发展的演化规律。试验结果表明:随着荷载发展,环缝错台依次经历静摩擦、动摩擦-销栓机制协同抗剪及连接件失效阶段;环缝抗剪传力机制依次由静摩擦、动摩擦−连接件销栓效应协同主导,其中混凝土管节−钢管节界面中钢背板的受压弯曲可进一步贡献抗剪性能;纵向力增大将提升环间摩擦力及抗剪承载力;剪力销与斜螺栓因并联作用决定剪切刚度,其破坏模式存在差异(剪力销断裂或螺栓屈服)。在此基础上,提出连接件剪切刚度解析模型,量化不同界面组合的抗剪极限承载力,结果表明,直螺栓界面错台量最大(11.6 mm),剪力销界面承载力最低(485.6 kN/m)。

     

    Abstract: Aiming at the uneven deformation caused by the difference in longitudinal stiffness of the pipe jacking and shield integrated quasi-rectangular tunnel structure in complex strata, the shear mechanism and shear stiffness characteristics of different ring-seam interfaces are systematically investigated through circumferential joint shear tests and theoretical analyses. Based on the background of Shanghai Rail Transit Line 12, three types of typical ring joint interfaces are selected to simulate the shear behavior under different longitudinal force conditions, which reveals the multi-stage evolution law of joint dislocation with increasing load. The results of experiment showed that with the load increases, the joint dislocation sequentially undergoes static friction, the cooperative shear resistance of dynamic friction and dowel mechanism, and connector failure: the circumferential joint shear force transfer is dominated by static friction, dynamic friction and the synergistic action of the connecting member pin-bolt mechanism, and the compressive bending of the steel backing plate in the interface of the concrete pipe section-steel pipe section further contributes to the shear performance; the increase of the longitudinal force will enhance the inter-ring friction and shear capacity; the shear stiffness is determined by the shear pin and the diagonal bolt due to the parallelism, and the damage modes show the differentiation (shear pin fracture or bolt yielding). An analytical model of the shear stiffness of the joints was proposed to quantify the shear ultimate bearing capacity of different interface combinations, and the results showed that the interface of straight bolts had the largest amount of misalignment (11.6 mm), and the interface of shear pins had the lowest bearing capacity (485.6 kN/m).

     

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