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Shaking table test and numerical simulation on ultra-large diameter shield tunnel passing through soft-hard stratum

机译:通过软硬阶层的超大直径盾构隧道振动台测试和数值模拟

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摘要

In this study, the seismic behavior of a shield tunnel with an ultra-large diameter of 15 m passing through a soft-hard stratum was investigated, using a series of 1/30 scaled shaking table model tests and numerical simulations. A modified similitude-ratio design method was proposed, with the soil–structure relative stiffness as the main control factor. The model tunnel was made of a plexiglass tube. The soft soil was modeled with silty clay, whereas the hard soil was modeled with fine and angular gravel. The tests were also simulated using the finite element modeling (FEM) software ABAQUS, and equivalent linearization was employed for the soil nonlinearity in the frequency domain. The results show that the modified similitude-ratio design method is workable and effective. Moreover, it may provide additional possibilities regarding the selection of structural model materials, and broaden the applicability of a shaking table with a conventional loading performance. The strain of the tunnel around the soft-hard interface increases significantly, and the maximum strain occurs within the range of 1 D (D is the outer diameter of the tunnel) in the soft soil near the interface along the direction of tunnel's length. In one observation section, the largest strain appears at the crown or bottom, followed by those at the spandrel, haunch, and knee. The region affected by the soft-hard interface is approximately 1 D in the hard soil and 2 D in the soft soil. The accelerations in the hard and soft soil are amplified, and the acceleration amplification factors gradually decrease with an increase in the excitation amplitude. The peak ground acceleration in the soft soil is smaller than that in the hard soil in the case with a larger excitation amplitude. The tunnel is curved in the vertical direction, owing to the soft-hard stratum. This study may provide a reference for shaking table tests for ultra-large diameter shield tunnels at complex sites.
机译:在这项研究中,研究了屏蔽隧道的抗震性能,具有通过软硬层的超大直径为15米的,使用一系列1/30缩放的振动台模型测试和数值模拟。提出了一种改进的类似比例设计方法,土壤结构相对刚度作为主要控制系数。模型隧道由有机玻璃管制成。软土用粉质粘土进行建模,而硬质土壤用良好和角度砾石建模。还使用有限元建模(FEM)软件ABAQUS模拟测试,并且使用等效的线性化用于频域的土壤非线性。结果表明,改进的类似比例设计方法是可行的,有效的。此外,它可以提供关于结构模型材料的选择的额外可能性,并扩大振动台与常规装载性能的适用性。围绕软硬界面周围的隧道的应变显着增加,并且在沿着隧道长度方向的界面附近的软土中,在1d(d是隧道的外径)的范围内发生最大应变。在一个观察部分中,最大的应变出现在冠部或底部,然后是刮刀,HA震动和膝关节。受软硬界面影响的区域约为硬质土壤中的1d,在软土中是2d。硬质和软土中的加速度被放大,并且加速放大因子随着激励幅度的增加而逐渐减小。软土中的峰接地加速度小于具有较大激发幅度的壳体中的硬土中的峰值。由于软硬层,隧道弯曲在垂直方向上。该研究可以为复杂部位提供超大直径屏蔽隧道的振动台试验的参考。

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  • 来源
    《Soil Dynamics and Earthquake Engineering》 |2021年第8期|106790.1-106790.17|共17页
  • 作者单位

    State Key Laboratory of Hydraulic Engineering Simulation and Safety Tianjin University Tianjin 300350 China|School of Civil Engineering Tianjin University Tianjin 300350 China;

    State Key Laboratory of Hydraulic Engineering Simulation and Safety Tianjin University Tianjin 300350 China|School of Civil Engineering Tianjin University Tianjin 300350 China;

    State Key Laboratory of Hydraulic Engineering Simulation and Safety Tianjin University Tianjin 300350 China|School of Civil Engineering Tianjin University Tianjin 300350 China;

    Beijing General Municipal Engineering Design & Research Institute Co. Ltd Beijing 100082 China;

    Beijing General Municipal Engineering Design & Research Institute Co. Ltd Beijing 100082 China;

    Beijing General Municipal Engineering Design & Research Institute Co. Ltd Beijing 100082 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Modified similitude-ratio design method; Shaking table test; Soft-hard stratum; Strain of tunnel; Ultra-large diameter shield tunnel;

    机译:改进的类似关系设计方法;摇架试验;软硬层;隧道菌株;超大直径盾构隧道;

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