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Understanding ground deformation mechanisms for multi-propped excavation in soft clay

机译:了解软土中多支撑开挖的地面变形机制

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Deep excavation works are carried out to construct underground infrastructures such as deep basements, subways, and service tunnels. The execution of these deep excavation works requires the use of retaining walls and bracing systems. Inadequate support systems have always been of major concern, as excessive ground movement induced during excavation could cause damage to neighboring structures, resulting in delays, disputes, and cost overruns. To gain a better understanding of the mechanisms involved in soil excavations, centrifuge model tests of deep excavations in slightly over-consolidated soft clay have been carried out using a newly developed testing system, in which the construction sequence of a multi-propped wall for deep excavations can be simulated in flight. Deformation mechanisms are observed using Particle Image Velocimetry. Settlements of the ground surface and changes in pore water pressure are monitored during the excavation. The effects of prop stiffness, wall rigidity, and excavation geometry on the characteristics of ground deformation and soil-structure interaction are demonstrated and discussed. The use of the conservation of energy within the framework of the mobilizable strength design in calculating ground movements is validated and shown to perform satisfactorily.
机译:进行了深基坑工程,以建造地下基础设施,例如深层地下室,地铁和服务隧道。这些深基坑工程的执行需要使用挡土墙和支撑系统。不足的支撑系统一直是主要关注的问题,因为在挖掘过程中引起的过度地面运动可能会损坏附近的结构,从而导致延误,纠纷和成本超支。为了更好地了解土壤开挖的机理,使用新开发的测试系统对稍微超固结的软粘土中的深基坑进行了离心模型测试,在该系统中,多支撑深墙的施工顺序可以在飞行中模拟挖掘。使用粒子图像测速仪观察变形机制。在开挖过程中,监测地面的沉降和孔隙水压力的变化。演示并讨论了支柱刚度,墙体刚度和开挖几何形状对地面变形和土-结构相互作用特性的影响。在可动强度设计的框架内计算地面运动时使用能量守恒已得到验证,并显示出令人满意的性能。

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