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3D numerical analyses of geosynthetic encased stone columns

机译:土工合成石柱的3D数值分析

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Stone columns are commonly used as ground improvement elements since they act as reinforcing inclusions. However, due to the lack of sufficient lateral confinement for the columns, this technique is not applicable for the improvement of grounds that consist of very soft soils. In order to provide lateral confinement and increase the load bearing capacity of stone columns installed in very soft clay soils, they are usually encased with suitable geosynthetic materials, forming geosynthetic-encased columns (GECs). In this paper, a 3D numerical approach is used to study the effect of varying the encasement length of different columns of a group of GECs on the overall group behavior. These results are compared with those obtained from a group of fully encased columns, through comparison of the settlements and lateral deformations (bulging) of the columns. The analyses are calibrated through modeling the behavior of GECs used in a ground reclamation project in Hamburg, Germany. Parametric studies are also carried out to investigate the effects of factors such as stiffness of the geosynthetic encasement, column diameter, and modulus of elasticity and friction angle of the column material on the overall behavior of the GEC group. The results indicated that encasing only the outer columns of the stone column group is sufficient in providing an optimal design. It was also shown that increasing the stiffness of the encasement and the column diameter enhance the overall behavior of the GEC group through increasing the overall stiffness of the stone columns and the ratio of the soft soil replaced by the stone columns (i.e. the area replacement ratio), respectively. Moreover, it was observed that the performance of GECs is comparatively less sensitive to the internal friction angle of the column material, and that, in general, the modulus of elasticity of the column material has only a small effect on the group behavior.
机译:石柱通常用作地基改良元素,因为它们起着加固夹杂物的作用。但是,由于缺乏足够的横向约束,该技术不适用于改良由非常柔软的土壤组成的地面。为了提供横向约束并增加安装在非常软粘土中的石柱的承载能力,通常将它们用合适的土工合成材料包裹起来,形成土工包裹柱(GEC)。在本文中,使用3D数值方法来研究改变一组GEC的不同列的包裹长度对整体行为的影响。通过比较柱的沉降和横向变形(凸出),将这些结果与从一组完全包裹的柱中获得的结果进行比较。通过对德国汉堡的地面开垦项目中使用的GEC的行为进行建模,可以对分析进行校准。还进行了参数研究,以研究诸如土工合成材料外壳的刚度,柱直径以及柱材料的弹性模量和摩擦角等因素对GEC组整体性能的影响。结果表明,仅封装石柱组的外柱足以提供最佳设计。研究还表明,通过增加石柱的整体刚度和石柱所替代的软土比例(即面积替代率),增加围护的刚度和柱直径可增强GEC组的整体性能。 ), 分别。此外,已经观察到,GEC的性能对圆柱材料的内摩擦角相对较不敏感,并且通常,圆柱材料的弹性模量仅对基团行为产生很小的影响。

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