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Adaptive computational simulation of TBM-soil interactions during machine-driven tunnel construction in saturated soft soils

机译:饱和牙壤机械驱动隧洞施工中TBM土相互作用的自适应计算模拟

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In soft, partially or fully saturated ground conditions, machine driven tunnel construction causes short and long term ground deformations resulting from the disturbance of the virgin stress state of the soil and changes in the pore water conditions. These variations are in turn influenced by the heading face support, shield skin friction and by the gap grouting. Realistic large-scale 3D simulations are therefore increasingly required to investigate the interaction between machine-driven tunnel construction and the surrounding soil in order to provide reliable estimates of the expected settlements and associated risks of damage for existing structures, respectively, in particular in urban tunneling projects. If performed properly, these simulations involve complex interactions between individual components of the numerical model. The presented paper is concerned with recent advances in the process-oriented adaptive computational simulation of the excavation and steering processes in mechanized tunneling in soft soils using the finite element method. A novel automated adaptive mesh-refinement procedure is proposed to allow a refined resolution of the region of interest in the vicinity of the tunnel face during the TBM advancement. This procedure allows for an accurate assessment of the tunnel face stability and for the investigation of the immediate soil deformation and pore pressure changes around the tunnel. Furthermore, selected aspects of the numerical treatment such as the stabilization of low order two-phase finite elements and the sub stepping schemes inherent in the numerical integration of elasto-plastic models are also addressed in the presentation.
机译:在柔软,部分或完全饱和的地面条件下,机器驱动的隧道施工导致短期和长期的地面变形,由土壤的静止的扰动和孔隙水条件的变化产生。这些变化又受到标题面部支撑,屏蔽皮肤摩擦和间隙灌浆的影响。因此现实的大型三维模拟越来越需要调查机驱动隧道施工并且为了提供预期的聚居的可靠估计周围的土壤和用于现有的结构,分别损害相关的风险之间的相互作用,特别是在城市隧道项目。如果执行正确,这些模拟涉及数值模型的各个组件之间的复杂相互作用。本文涉及使用有限元法在软土中的挖掘和转向过程的过程定向自适应计算模拟中的最近进步。提出了一种新颖的自动适应网格精炼过程,以便在TBM进步期间允许在隧道面附近进行精制分辨率。该程序允许对隧道面稳定性的准确评估以及对隧道周围的直接土壤变形和孔隙压力发生调查。此外,在介绍中还解决了诸如低阶两相有限元的稳定化的数值治疗的所选方面,例如弹性塑料模型的数值集成的数值集成中固有的子步进方案。

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