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1.
采用动力文克尔地基模型模拟均质粘弹性土层,推导出了均质土中单桩动阻抗;引用桩-桩动力相互作用因子,得到了刚性承台下群桩的动阻抗;而且建立了柔性承台与桩基础的竖向振动模型,该模型考虑了筏板自身的变形,并导出了其共同作用的运动方程。最后对柔性承台与刚性承台的计算结果作了对比分析。  相似文献   

2.
对瑞利波作用下桩筏基础的动力响应进行了数值分析。采用薄层元素法和有限单元法建立了土-桩筏基础动力相互作用的分析模型,并讨论了桩筏基础在瑞利波作用下的水平与摇摆动力响应。讨论了一些重要参数(如桩长、桩距、桩的刚度以及土的泊松比等)对桩筏基础的动力响应的影响。结果表明:不考虑筏板-土相互作用,基础的动力响应在高频区域会产生较大的差别;在瑞利波作用下,桩筏基础会产生显著的摇摆响应,且桩距、桩长和土的泊松比对其影响较大,而桩土刚度比对其影响较小。  相似文献   

3.
基于已开展的非液化场地-群桩基础-结构体系动力响应大型振动台模型试验,进行三维全时程动力数值模拟分析。采用修正的Davidenkov模型反映土体在地震反应过程中的模量衰减,通过“捆绑边界”模拟模型箱的层状剪切运动。通过对比试验中土-结构体系加速度响应时程、土体位移和桩基内力等,验证数值模型的有效性。利用已验证的数值模型,开展承台尺寸对桩-土-上部结构动力响应影响研究。结果表明,承台厚度的增大会导致上部结构和桩顶惯性效应减小;地震作用下沿激振方向前桩大于后桩,随着承台厚度的增大,前桩与后桩峰值弯矩差值率为16.1%~32.1%,群桩效应影响增大;随着承台厚度的增大,承台-土动土压力增大了3~6倍,承台与桩基水平荷载分担比增大,桩基弯矩反弯点位置上移了0.50 m;承台-土的相互摩擦作用会降低结构整体动力响应。  相似文献   

4.
液化土中桩基础动力响应规律一直是工程抗震领域关注的热点问题。本文基于非液化砂土和不同厚度饱和砂土中的2×2群桩结构模型振动台试验,通过输入一定峰值加速度和频率的正弦波,对群桩在非液化土层和两种不同厚度饱和砂土层中的横向动力响应特性进行振动台试验研究。研究结果表明:在正弦波输入情况下,非液化砂土中群桩承台加速度和位移时程与台面输入时程相比,波形变化规律与峰值大小均相差不大;而对两种不同厚度饱和砂土中承台加速度和位移峰值放大较多,在相对较薄的饱和砂土中群桩承台加速度峰值较台面输入放大了1.83倍,较台面输出位移峰值放大了1.58倍;在相对较厚的饱和砂土中承台加速度和位移峰值则分别放大了2.18倍和1.91倍,说明在相同输入条件下,较厚的饱和砂土在发生液化后群桩承台的动力响应更加显著。  相似文献   

5.
桩和群桩的静刚度及动力阻抗(1)   总被引:4,自引:0,他引:4  
本文仅涉及桩的静力和动力性能的一些最新进展、详述了桩和群桩的静刚度与动力阻抗的简化计算方法,检验了理论方法与现场试验结果之间的差异。  相似文献   

6.
目前地震作用下桩基水平动力响应一直是岩土工程界和地震工程领域关注的热点研究问题之一。本文基于振动台试验,通过不同的台面输入波形,引入FBG传感系统对土-群桩—承台结构水平动力响应特性及P-Y曲线主干线变化规律进行研究,并将群桩中各基桩和单桩P-Y曲线主干线与API规范推荐方法进行对比研究。结果表明:对于非液化土试验,各承台的加速度和位移较台面放大倍数普遍不大;饱和砂土试验单桩承台加速度和位移比群桩大2~3倍,群桩承台加速度和位移幅值分别是非液化土的2~3倍;非液化土试验桩基P-Y曲线主干线倾斜度与API规范方法符合较好,而饱和砂土中无论是单桩还是群桩P-Y主干线均需将API规范方法进行适当的折减。  相似文献   

7.
目前地震作用下桩基水平动力响应一直是岩土工程界和地震工程领域关注的热点研究问题之一。本文基于振动台试验,通过不同的台面输入波形,引入FBG传感系统对土-群桩—承台结构水平动力响应特性及P-Y曲线主干线变化规律进行研究,并将群桩中各基桩和单桩P-Y曲线主干线与API规范推荐方法进行对比研究。结果表明:对于非液化土试验,各承台的加速度和位移较台面放大倍数普遍不大;饱和砂土试验单桩承台加速度和位移比群桩大2~3倍,群桩承台加速度和位移幅值分别是非液化土的2~3倍;非液化土试验桩基P-Y曲线主干线倾斜度与API规范方法符合较好,而饱和砂土中无论是单桩还是群桩P-Y主干线均需将API规范方法进行适当的折减。  相似文献   

8.
9.
对动力群桩效应的理论分析模型作了较为系统的回顾与总结,对其中代表性的分析方法作了详细介绍及必要的分析说明,简述了作者对该领域未来发展的一些想法。  相似文献   

10.
为研究动荷载作用下饱和砂土发生液化前后斜群桩的动力响应相关问题,利用土工离心机振动台进行了饱和砂土场地条件下的斜群桩物理模型试验.通过试验分别对土层响应、桩身弯矩以及桩顶承台加速度和位移等进行了详细分析,得到了如下结论:不同荷载作用下土层液化范围的改变导致了土层加速度峰值出现了不同程度的放大或缩小现象;砂土液化前后桩身...  相似文献   

11.
12.
The influence of inclined piles on the dynamic response of deep foundations and superstructures is still not well understood and needs further research. For this reason, impedance functions of deep foundations with inclined piles, obtained numerically from a boundary element–finite element coupling model, are provided in this paper. More precisely, vertical, horizontal, rocking and horizontal–rocking crossed dynamic stiffness and damping functions of single inclined piles and 2 × 2 and 3 × 3 pile groups with battered elements are presented in a set of plots. The soil is assumed to be a homogeneous viscoelastic isotropic half‐space and the piles are modeled as elastic compressible Euler–Bernoulli beams. The results for different pile group configurations, pile–soil stiffness ratios and rake angles are presented. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

13.
打桩引起的地面振动的研究   总被引:1,自引:0,他引:1  
为了对打桩引起的地面振动进行研究,应用一维应力波理论建立了粘弹性成层土中等截面弹性桩的力学模型,得到了桩中任意一点处位移的半解析解。利用桩与土的相互作用将桩对土的作用力简化到各土层面上。在复阻尼理论和纳维方程的基础上,利用分层法得到了任意荷载作用下土的位移、速度和加速度的解。从而得到了打桩引起的地面振动的衰减特性。通过实测结果和计算结果的比较说明了该方法的可行性。  相似文献   

14.
A methodology using modal analysis is presented to evaluate dynamic displacements of a circular flexible foundation on soil media subjected to vertical vibration. The interaction effects between the foundation and the underlying soil are represented using modal soil impedance functions determined by an efficient procedure developed. The displacements of the foundation can then be easily solved by modal superposition. Comparing with existing solutions, the presented method is found to provide accurate results with less computational effort using only a few vibration modes. In addition, parametric studies for modal responses of the flexible foundation indicate that the response of the foundation are significantly influenced by relative stiffness between the foundation and the soil medium, load distributions, vibration frequency range, and the foundation mass. Besides, justification for flexible foundations to be considered as rigid are investigated.  相似文献   

15.
Simple formulas are derived for the dynamic stiffness of pile group foundations subjected to horizontal and rocking dynamic loads. The formulations are based on the construction of a general model of impedance matrices as the condensation of matrices of mass, damping, and stiffness, and on the identification of the values of these matrices on an extensive database of numerical experiments computed using coupled finite element–boundary element models. The formulations obtained can be readily used for the design of both floating piles on homogeneous half‐space and end‐bearing piles and are applicable for a wide range of mechanical and geometrical parameters of the soil and piles, in particular for large pile groups. For the seismic design of a building, the use of the simple formulas rather than a full computational model is shown to induce little error on the evaluation of the response spectra and time histories. Copyright © 2009 John Wiley & Sons, Ltd.  相似文献   

16.
Significant research has been reported on the dynamic analysis of pile groups. However, in most of the cases, the effect of pile cap is neglected despite the fact that there may be additional interactions due to the presence of the cap. This paper presents the dynamic impedances for the pile groups with caps embedded in isotropic homogeneous elastic soils. A general three-dimensional finite element procedure is developed. The system is sub-structured into bounded near-field and an unbounded far-field. The pile-soil system of the near-field is modeled using solid finite elements, and the unbounded elastic soil system of the far-field is modeled using the consistent infinitesimal finite element cell method (CIFECM) in the frequency domain.  相似文献   

17.
在试验研究基础上,采用ANSYS有限元分析程序,对钢柱脚混凝土承台在单向加载下的性能作了弹塑性分析,研究了其在竖向抗拔荷载作用下的开裂、变形及破坏的全过程,并在此基础上,建立了简化的抗拔承载力计算的桁架模型,计算结果与试验结果符合较好。  相似文献   

18.
Numerical analysis of an infinite pile group in a liquefiable soil was considered in order to investigate the influence of pile spacing on excess pore pressure distribution and liquefaction potential. It was found that an optimal pile spacing exists resulting in minimal excess pore pressure. It was also found that certain pile group configurations might reduce liquefaction potential, compared to free field conditions. It was observed that for closely spaced piles and low frequency of loading, pile spacing has little influence on the response of the superstructure.  相似文献   

19.
The beneficial or detrimental role of battered piles on the dynamic response of piled foundations has not been yet fully elucidated. In order to shed more light on this aspect, kinematic interaction factors of deep foundations with inclined piles, are provided for single‐battered piles, as well as for 2 × 2 and 3 × 3 groups of piles subjected to vertically incident plane shear S waves. Piles are modelled as linear‐elastic Bernoulli beams, whereas soil is assumed to be a linear, isotropic, homogeneous viscoelastic half‐space. Different pile group configurations, pile‐soil stiffness ratios, and rake angles are considered. The relevance and main trends observed in the influence of the rake angle on the kinematic interaction factors of the analysed foundations are inferred from the presented results. An important dependence of the kinematic interaction factors on the rake angle is observed together with the existence of an inclination angle at which cap rotation and excitation become out of phase in the low‐to‐mid frequency range. The existence of a small batter angle that provides minimum cap rotation is also shown. Copyright © 2014 John Wiley & Sons, Ltd.  相似文献   

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