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Three-Dimensional Simulation of a Load Transfer Mechanism for Frictional and End Bearing CMC Supported Embankments on Soft Soil

机译:软土地基上带摩擦和端承式CMC支撑路堤荷载传递机制的三维模拟

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Recently, the use of controlled modulus columns (CMC) has gained popularity in the support of rail and road bridge approach embankments on soft soils. If the columns are extended into a competent firm soil, and designed to take nearly all the vertical loads, they become rigid inclusions. The advantage of this design approach is that settlement will be controlled, but the drawback is that the columns will attract greater load, including bending moment and shear force in situations where non-uniform loading or ground conditions exist. The load on the composite soil-CMC is uniformly distributed by the upper layer of granular load transfer platform (LTP). In this paper, the effect of CMC length on the load transfer mechanism is numerically investigated. Coupled flow-deformation analysis has been performed for a long period to understand the system response in the long term, while interface elements capable of simulating gapping and sliding between CMC and the surrounding soil are considered. A geosynthetic reinforcement layer has been simulated using the inbuilt FLAC~(3D) geogrid element. The force in the reinforcement layer has been evaluated, and in particular, a clear comparison is made between the stresses in CMC and the ground settlement with floating and end-bearing columns.
机译:最近,控制模量柱(CMC)的使用在软土上的铁路和公路桥梁引道堤的支持中获得了普及。如果将立柱伸入合适的坚固土壤中,并设计成承受几乎所有垂直载荷,则它们将成为刚性夹杂物。这种设计方法的优点是可以控制沉降,但缺点是在存在不均匀载荷或地面条件的情况下,立柱会吸引更大的载荷,包括弯矩和剪切力。复合土-CMC上的荷载由颗粒荷载传递平台(LTP)的上层均匀分布。本文通过数值研究了CMC长度对载荷传递机理的影响。为了长期了解系统响应,已经进行了很长时间的耦合流-变形分析,同时考虑了能够模拟CMC和周围土壤之间的间隙和滑动的界面元素。使用内置的FLAC〜(3D)土工网格单元模拟了土工合成材料增强层。已经评估了增强层中的力,特别是在CMC中的应力与浮子和端轴承柱的地面沉降之间进行了清晰的比较。

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