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Seismic behaviour of shallow foundations on layered liquefiable soils

机译:层状可液化土层上浅层地基的抗震性能

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摘要

Earthquakes have been historically perceived as one of the most damagingnatural hazards. Seismic soil liquefaction is often one of the major sources ofdamage and disruptions, and has been observed to severely affect key lifelines.Settlement and tilting of shallow foundations resting on saturated sandy/siltysoils has been repeatedly observed throughout the world as a consequence ofliquefaction or softening of the foundation soil. Such settlements and tilts canrender structures unusable, and homes uninhabitable, causing significant economic losses. Despite the undoubted relevance of this phenomenon, field data on the liquefaction induced settlement of shallow foundations are scarce. New data from 24 buildings that suffered settlement and tilting as a consequences of soil liquefaction during the February 27th 2010 Maule earthquake in Chile, are presented in this work to supplement the existing field cases database. Due to the complexity of this phenomenon, field data are not suffcient to fully understand the mechanisms controlling the settlement of structures resting on liquefied or softened ground.In this framework, centrifuge modelling provides a valuable tool for research by reproducing field conditions in a controlled environment.A series of 10 dynamic centrifuge tests were performed as part of this work.Thanks to the University of Dundee newly installed centrifuge-mounted servohydraulic earthquake simulator, scaled version of field earthquake motions were reproduced in the models tested, enhancing the reliability of experimentalresults. Particular attention was given to the effect of key parameters on theobserved foundation settlement. These parameters are the bearing pressure ofthe foundation, the thickness of the liquefied soil layer and the soil's relativedensity. The effect of the soil layering pattern was also investigated, withparticular attention to the effect of a low permeability soil crust overlying theliquefied soil. Results suggest that the excess pore pressure generation in thefoundation soil is significantly influenced by the stress distribution due to thepresence of the foundation itself. In particular, lower excess pore pressurewhere measured in soil subjected to high static shear stresses (i.e. below theedge of a footing). The soil stratification pattern, and the relative thicknessesof the liquefied and un-liquefied portions of the soil profile, were also found toplay a crucial role in determining the seismic demand at foundation level andthe type of failure mechanism leading to foundation settlement.Observed differences between centrifuge (i.e. field) and element testing soilresponse are also discussed. Experimental results are compared to field observations, with the aim of improving the current understanding of the behaviour of structures built on shallow foundations in the eventuality of seismic induced liquefaction of their foundation soil.
机译:从历史上看,地震是最具破坏力的自然灾害之一。地震液化常常是破坏和破坏的主要来源之一,并且已严重影响关键生命线。由于液化或软化,在世界各地都反复观察到基于饱和砂土/粉质土壤的浅层地基的沉降和倾斜。基础土壤。这样的定居点和倾斜物使无法使用的折皱结构和房屋无法居住,造成了巨大的经济损失。尽管这一现象无疑具有相关性,但有关液化引起浅层基础沉降的现场数据却很少。该工作提供了来自24座建筑物的新数据,这些数据在2010年2月27日智利莫尔地震中因土壤液化而遭受沉降和倾斜,是对现有现场案例数据库的补充。由于这种现象的复杂性,现场数据不足以充分了解控制液化或软化地面上结构沉降的控制机制。在此框架下,离心机建模为通过在受控环境中重现现场条件提供了有价值的研究工具作为这项工作的一部分,进行了一系列的10次动态离心测试。由于邓迪大学新安装了离心式伺服液压地震模拟器,在测试的模型中复制了现场地震运动的缩放版本,从而提高了实验结果的可靠性。特别关注关键参数对观测基础沉降的影响。这些参数是地基的承载压力,液化土壤层的厚度和土壤的相对密度。还研究了土壤分层模式的影响,特别注意低渗透性土壤结皮覆盖液化土壤的影响。结果表明,由于基础本身的存在,地基土中产生的过大孔隙压力受到应力分布的显着影响。尤其是在承受高静态剪应力(即在立脚边缘以下)的土壤中测得的较低的多余孔隙压力较低。还发现了土壤分层模式以及液化和未液化部分土壤剖面的相对厚度在决定基础水平上的地震需求以及导致基础沉降的破坏机制类型方面起着至关重要的作用。 (即现场)和元素测试土壤响应也进行了讨论。将实验结果与现场观察结果进行了比较,目的是为了提高当前对浅层地基上建筑物因地震诱发地基液化的行为的理解。

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    Bertalot Daniele;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 eng
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