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Strain effects on kinematic pile bending in layered soil

机译:应变对分层土中运动桩弯曲的影响

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The kinematic bending of single piles in two-layer soil is explored to account for soil stiffness degradation and associated damping increase with increasing levels of shear strain, a fundamental aspect of soil behaviour which is not incorporated in current simplified seismic design methodologies for pile foundations. A parametric study of a vertical cylindrical pile embedded in a two-layer soil profile to vertically-propagating S waves, carried out in the time domain by a pertinent beam-on-dynamic-Winkler-foundation (BDWF) model, is reported. Strain effects are treated by means of the equivalent-linear procedure which provides soil stiffness and damping ratio as function of shear strain level. Whereas the approach still represents a crude representation of the actual soil behaviour to dynamic loading, it is more realistic than elementary solutions based on linear visco-elasticity adopted in earlier studies. The paper highlights that soil nonlinearity may have either a detrimental or a beneficial effect on kinematic pile bending depending on the circumstances. The predictive equations for kinematic pile bending in visco-elastic soil recently developed by the Authors are extended to encompass strain effects. Numerical examples and comparisons against experimental data from case histories and shaking table tests are presented.
机译:探索了两层土壤中单桩的运动弯曲,以说明土的刚度降低以及相关的阻尼随剪切应变水平的增加而增加的情况,这是土壤行为的基本方面,目前并未纳入桩基础简化的地震设计方法中。通过对相关的动态Winkler地基梁(BDWF)模型在时域中进行了对埋入两层土壤剖面以垂直传播S波的垂直圆柱桩的参数研究。应变效应通过等效线性过程进行处理,该过程提供土壤刚度和阻尼比作为剪切应变水平的函数。尽管该方法仍能代表实际土壤对动态荷载的行为的粗略表述,但比早期研究中基于线性粘弹性的基本解法更为实际。本文着重指出,土壤非线性可能会根据情况对运动桩弯曲产生不利影响或有利影响。作者最近开发的粘弹性土壤中运动桩弯曲的预测方程扩展到包括应变效应。给出了数值示例,并与来自案例历史和振动台测试的实验数据进行了比较。

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