纵向力损失对公轨合建双层盾构隧道纵向抗震性能影响研究

Research on the Influence of Longitudinal Force Loss on the Longitudinal Seismic Performance of Double-deck Shield Tunnel for Combined Highway and Railway

  • 摘要: 为研究纵向力损失对有内部结构盾构隧道的纵向抗震性能的影响,以某穿越土-岩复合地层的特大断面公轨合建双层盾构隧道工程为背景,建立有无内部结构盾构隧道的三维有限元模型,采用隐式动力时程法,分析不同纵向力损失程度与是否考虑内部结构影响的盾构隧道在纵向地震作用下的环缝张开变形、结构损伤以及内力分布规律。结果表明:(1)纵向力损失会减小隧道纵向刚度,在纵向地震作用下,隧道环缝张开变形增大,其中拱顶张开量在土-岩交界处增大1.2 mm,在变形缝处增大2.49 mm,拱底张开量在变形缝处增大1.91 mm。内部结构可增大隧道纵向刚度,减小隧道环缝张开,但会增大隧道变形缝处的张开变形;(2)隧道结构损伤程度随纵向力损失而增大,内部结构损伤主要发生在现浇部分,且集中在管片环缝沿接缝发展处;(3)隧道最大正弯矩发生在土-岩交界面处,最大负弯矩发生在变形缝处,在土-岩交界面的软土侧15环范围内出现负轴力;(4)纵向力损失与内部结构的加入均会减小隧道在地震作用下的峰值内力,纵向力未损失时,内部结构使隧道最大正弯矩减小19.22%,最大负弯矩减小10.59%,最大正轴力减小8.39%,最大负轴力减小6.15%。

     

    Abstract: To investigate the influence of longitudinal force loss on the longitudinal seismic performance of shield tunnels with internal structures, a three-dimensional finite element model of shield tunnel with and without internal structures was established. The model was based on an extra-large cross-section double-deck shield tunnel for combined highway and railway use, passing through a soil-rock composite stratum. The implicit dynamic time-history method was employed to analyze the opening deformation of the ring joint, structural damage and internal force distribution of the shield tunnel under longitudinal seismic excitation. The analysis considered varying degrees of longitudinal force loss and the influence of internal structures. The results indicate that: (1) Longitudinal force loss reduces the longitudinal stiffness of the tunnel, leading to increased ring-joint opening deformation under longitudinal earthquakes. Specifically, the crown opening increased by 1.2 mm at the soil-rock interface and by 2.49 mm at the deformation joint, while the invert opening increased by 1.91 mm at the deformation joint. Internal structures enhance the longitudinal stiffness of the tunnel and reduce ring-joint openings, but they increase the ring-joint opening deformation at the deformation joints. (2) The extent of structural damage in the tunnel increases with longitudinal force loss. Damage to internal structures primarily occurs in the cast-in-place sections and tends to propagate along the segment ring joints. (3) The maximum positive bending moment of the tunnel occurs at the soil-rock interface, while the maximum negative bending moment occurs at the deformation joints. Negative axial forces appear within a range of 15 rings on the soft soil side of the soil-rock interface. (4) Both longitudinal force loss and the inclusion of internal structures reduce the peak internal forces in the tunnel under seismic action. When longitudinal force is not lost, the internal structures reduce the maximum positive bending moment by 19.22%, the maximum negative bending moment by 10.59%, the maximum positive axial force by 8.39%, and the maximum negative axial force by 6.15%.

     

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