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A new expression for determining the bending stiffness of circular micropile groups

机译:确定圆形微型桩组弯曲刚度的新表达式

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Increased bending stiffness and decreased foundation rotation are two main factors which reduce the rocking motion of foundation. A micropile group in circular arrangement is an innovative technique for reducing the rocking motion of the foundation. In this paper, the effects of several parameters were numerically investigated on the rocking stiffness of circular micropile group foundations. The finite difference software FLAC3D was used to model the foundation, soil, and the structure. The micropiles used in this study varied in the diameter, but had similar length. A total of seven records were selected to cover a wide range of frequency content, duration and amplitude. The results from the numerical simulation were compared and verified against those obtained from an alternative numerical method as well as a set of experimental test results. The model was then used for parametric studies and the effects of relevant parameters were investigated. The results showed that slenderness, inclination angle and distance ratio of a micropile group are main factors which increase the soil stiffness and control the seismic motion of high-rise buildings. Based on the results, a new expression was proposed that can be used to determine the optimal moment of inertia of circular micropile groups. The proposed expression revealed that the primary factors which reduce the effective period of the buildings are the number, diameter, and injection pressure of micropiles in a circular micropile group. Using the proposed relationship, it was found that using circular micropile groups can reduce the destructive seismic effects (i.e. drift demand) in high-rise buildings by up to 60%. (C) 2015 Elsevier Ltd. All rights reserved.
机译:弯曲刚度的增加和基础旋转的减少是减少基础摇摆运动的两个主要因素。圆形排列的微型桩组是减少地基摇摆运动的一项创新技术。本文通过数值研究了几个参数对圆形微型桩基础的摇摆刚度的影响。使用有限差分软件FLAC3D对基础,土壤和结构进行建模。本研究中使用的微型桩的直径不同,但长度相似。总共选择了七个记录,以涵盖广泛的频率内容,持续时间和幅度。将数值模拟的结果与从其他数值方法获得的结果以及一组实验测试结果进行比较和验证。然后将该模型用于参数研究,并研究了相关参数的影响。结果表明,微型桩的细长度,倾斜角和距离比是增加土体刚度并控制高层建筑地震运动的主要因素。根据结果​​,提出了一个新的表达式,可以用来确定圆形微群的最佳惯性矩。拟议的表达式表明,减少建筑物有效期的主要因素是圆形微型桩组中微型桩的数量,直径和注入压力。利用所提出的关系,发现使用圆形微型桩组可以将高层建筑中的破坏性地震影响(即漂移需求)降低多达60%。 (C)2015 Elsevier Ltd.保留所有权利。

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