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首页> 外文期刊>International journal of geomechanics >Three-Dimensional Discrete-Element Method Analysis of Stresses and Deformations of a Single Geogrid-Encased Stone Column
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Three-Dimensional Discrete-Element Method Analysis of Stresses and Deformations of a Single Geogrid-Encased Stone Column

机译:土工格栅包裹石柱的应力和变形的三维离散元方法分析

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The discrete-element method (DEM) has been successfully used to simulate the behavior of granular material and was used in this study to analyze the stresses and deformations of a single geogrid-encased stone column under unconfined compression. The aggregate was simulated using graded particles of diameters ranging from 30 to 50 mm, and a biaxial geogrid as an encasement material was simulated using parallel-bonded particles. The micromechanical properties of the aggregate were determined using numerical triaxial tests at various confining stresses. The tensile properties of the geogrid were determined by a multirib tensile test, and the flexural rigidity of the geogrid was calibrated by a flexural bending test. This study investigated the changes in vertical and radial stresses and porosities, the contact-force distribution and particle movements within the aggregate, and the deformation and tensile force in the geogrid encasement. The load-displacement response of the DEM model of the geogrid-encased aggregate sample closely agreed with the experimental results. The coefficient of radial stress, defined as the ratio of vertical stress to radial stress within the aggregate, varied from 0.6 to 2.7 during loading where the tensile strength of the geogrid encasement was not fully mobilized. The aggregate showed volumetric contraction at small deformation and then dilation with an increase of deformation. The interlocking effects between the aggregate and the geogrid were observed at the initial state. The particles within the middle portion of the column were more likely to slip than those at other locations. (C) 2017 American Society of Civil Engineers.
机译:离散元法(DEM)已成功用于模拟粒状材料的行为,并已用于分析无围压下单个土工格栅包裹的石柱的应力和变形。使用直径范围为30至50 mm的渐变颗粒模拟集料,并使用平行粘结的颗粒模拟作为包裹材料的双轴土工格栅。使用数值三轴试验在各种围压下确定骨料的微机械性能。土工格栅的拉伸性能通过多肋拉伸试验确定,土工格栅的抗弯刚度通过挠曲弯曲试验进行校准。这项研究调查了垂直和径向应力和孔隙率的变化,集料内的接触力分布和颗粒运动以及土工格栅中的变形和拉力。土工格栅包裹的骨料样品的DEM模型的荷载位移响应与实验结果非常吻合。径向应力系数(定义为骨料中垂直应力与径向应力之比)在加载过程中(土工格栅外壳的抗张强度未完全发挥作用)在0.6到2.7之间变化。骨料在小变形时显示出体积收缩,然后随着变形的增加而膨胀。在初始状态下观察到骨料与土工格栅之间的互锁效应。柱中部的颗粒比其他位置的颗粒更容易滑动。 (C)2017年美国土木工程师学会。

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