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Modelling of ground vibration from tunnels in a poroelastic half-space using a 2.5-D FE-BE formulation

机译:使用2.5维FE-BE公式对多孔弹性半空间中隧道的地面振动进行建模

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This paper presents an improved two-and-a-half-dimensional (2.5-D) finite element-boundary element (FE-BE) model to predict train-induced vibrations from a tunnel with an arbitrarily shaped cross-section embedded in a poroelastic half-space. The proposed model considers both the saturated porous characteristic of the soil and the free surface effect. A 2.5-D BE model based on the Green's function for a poroelastic half-space is developed to simulate the soil surrounding the tunnel. The discretization of the infinite ground surface is not required, which avoids spurious reflections induced by mesh truncations and significantly reduces the mesh size of boundary elements. The 2.5-D BE model for saturated soils and the 2.5-D FE model for tunnels are coupled via the boundary conditions on the soil-tunnel interface. The track components are coupled with the tunnel-soil model to more accurately predict vibrations induced by underground railways. After being verified via comparison with an existing model, the proposed model is used to assess train-induced vibrations from a quasi-rectangular tunnel in a poroelastic half-space. Analysis of vibrations induced by the single-line load and double-line load on rails is conducted, respectively. The results show that the insertion gain, which is greater than 30 dB, is highly dependent on the frequency and observation position. When the saturated soil is simplified as the equivalent single-phase elastic soil, the soil displacement tends to be overestimated while the soil stress is underestimated. A saturated soil model may more accurately describe train-induced vibrations from a tunnel in the water-rich region.
机译:本文提出了一种改进的二维半(2.5-D)有限元边界元(FE-BE)模型,以预测列车在任意形状的断面中埋置在多孔弹性体中的隧道引起的振动一半的空间。所提出的模型考虑了土壤的饱和多孔特性和自由表面效应。建立了基于Green函数的多孔弹性半空间的2.5维BE模型,以模拟隧道周围的土壤。不需要对无限大的地面进行离散化处理,从而避免了因网格截断而引起的杂散反射,并显着减小了边界元素的网格大小。饱和土的2.5维有限元模型和隧道的2.5维有限元模型是通过土-隧道界面上的边界条件进行耦合的。轨道组件与隧道-土壤模型耦合,可以更准确地预测地下铁路引起的振动。通过与现有模型进行比较验证后,所提出的模型用于评估多孔弹性半空间中准矩形隧道产生的列车振动。分别对轨道上的单线载荷和双线载荷引起的振动进行了分析。结果表明,大于30 dB的插入增益高度依赖于频率和观察位置。当将饱和土简化为等效单相弹性土时,土壤位移往往被高估,而土壤应力被低估。饱和土壤模型可以更准确地描述火车在水源丰富地区的隧道引起的振动。

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