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Numerical analysis on the seismic behavior of a large metro subway tunnel in liquefiable ground

机译:液化地面中大型地铁隧道抗震性能的数值分析

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摘要

This paper aims to investigate the seismic behavior of a large rectangular metro tunnel in liquefiable soil deposit. The study is performed by an effective stress based soil-water fully coupling finite element-finite difference (FE-FD) method with consideration of the excavation process during structure construction. The behavior of the foundation soils are described by a cyclic elasto-plastic constitutive model in which, the stress-induced anisotropy, the density and structure of ground can be described in a unified way, while the tunnel structure is simulated using elastic solid elements and beam elements. A static calculation is first carried out in three steps to reflect the construction process of the tunnel structure, and after the initial stress field of the ground due to the gravitation is establish, the calculation is automatically changed to dynamic analysis with the input earthquake motion. The results show a matching uplift response of the structure, acceleration, pore water pressure and ground displacement in liquefied soil deposits. The seismic behavior and floatation mechanism of the large metro tunnel structure in liquefied soil deposits has been clarified sufficiently. The displacement of soil around the rectangular structure was confirmed to resemble a flow mechanism from two sides of the structure to its invert which is different from the global circular flow mechanism of circular tunnels. The influence of vertical input motion is also simulated. Last, the effect of a mitigation method with different reinforcement thicknesses to reduce the uplift of the structure is discussed. The results show that the injection grouting method to reduce the uplift of structure is of important meaning in engineering practice.
机译:本文旨在研究大型矩形地铁隧道在可液化土壤中的抗震性能。该研究是基于有效应力的土-水完全耦合有限元-有限差分(FE-FD)方法进行的,其中考虑了结构施工期间的开挖过程。用循环弹塑性本构模型描述地基土的行为,其中应力诱导的各向异性,地面的密度和结构可以统一描述,而隧道结构则使用弹性固体单元模拟。梁元素。首先分三步进行静态计算以反映隧道结构的施工过程,并在建立起因重力引起的地面初始应力场后,根据输入地震运动将计算自动更改为动态分析。结果表明,液化土壤沉积物中结构,加速度,孔隙水压力和地面位移具有匹配的隆起响应。充分阐明了液化土壤中大型地铁隧道结构的抗震性能和漂浮机理。确认矩形结构周围的土壤位移类似于从结构的两侧到其倒置的流动机制,这与圆形隧道的整体圆形流动机制不同。还模拟了垂直输入运动的影响。最后,讨论了采用不同加固厚度的缓解方法对减少结构隆起的影响。结果表明,采用注浆法减少结构的抬升在工程实践中具有重要意义。

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