首页> 外文会议>International Conference on Advances in Concrete and Structures >Simplified Dynamic Finite-Element Analysis for Three-Dimensional Pile-Grouped-Raft-High-Rise Buildings
【24h】

Simplified Dynamic Finite-Element Analysis for Three-Dimensional Pile-Grouped-Raft-High-Rise Buildings

机译:三维桩 - 筏 - 筏高层建筑简化动态有限元分析

获取原文
获取外文期刊封面目录资料

摘要

Combined with the respective advantages in S-R(Sway-Rocking) impedance concept and finite-element method, a simplified 3D structural dynamic FEM considering composite pile-group-soil effects is presented. The structural members including piles are modeled by spacial beam or shell elements, and raft-base is divided into thick-shell elements with its spring-dashpot boundary coefficient obtained by impedance backcalculated. The mass-spring elements for soil between piles are set to simulate vertical, horizontal pile-group effects by strata-equivalent approach. The soil beside composite body is separated into near-field and far-field parts. The former is modeled by nonlinear spring-dashpot elements based on Winkler's hypothesis, while the latter is modeled by a series of linear mass-spring-dashpots. With the effects of boundary track forces and energy radiation, the presented model enables researchers to conduct the time-domain nonlinear analysis in a relatively simple manner which avoids sophisticated boundary method and solid-element mesh bringing with tremendous computational cost. The seismic effect on dynamic interaction of pile-soil-complicated structures would be efficiently annotated from two structural engineering and geotechnical engineering aspects and the numerical calculation effort would be drastically decreased too. The complete procedure is mainly performed using the parametric design language assembled in the Finite Element Code Ansys. With the dynamic analysis of foundation and superstructure for a pile-supported 15-storey building, the influence of the participant effect on structural dynamic response will be depicted by various dynamic parameters of pile-soil-raft foundation in detail. Not only do the results have an agreement with some conclusions drawn by the general interaction theory, but also certain of phenomena which would be disagree with that by general analysis is involved. Even with the finite-element meshes for 68 piles, the time-history analysis procedure for PGSS (Pile-Group-Soil-Superstructure) system and the qualitative evaluation with various SSI parameters can be also fulfilled efficiently and rapidly by presented means. These results may be of help to the designers to quickly assess the significance of interaction effect for the high-rise buildings resting on any type or layout of pile-group foundation.
机译:结合S-R(摇摆)阻抗概念和有限元方法的各个优点,提出了考虑复合桩基土壤效应的简化三维结构动态FEM。包括桩的结构构件由空间梁或壳体元件建模,筏基被分成厚壳元件,其弹簧划分的边界系数被阻抗被隔绝的阻抗。桩之间的土壤的质量弹簧元件被设定为模拟垂直,水平桩基效应通过层等的方法。复合体旁边的土壤分成近场和远场部件。前者由基于Winkler的假设的非线性弹簧 - DASHPOT元素(后者)由一系列线性质量弹簧划线点建模。随着边界轨道力和能量辐射的影响,所提出的模型使研究人员能够以相对简单的方式进行时域非线性分析,避免了具有巨大计算成本的复杂边界方法和固体网格。从两个结构工程和岩土工程方面有效地注释了对桩土复杂结构的动态相互作用的地震影响,数值计算努力也会大大降低。完整的程序主要是使用在有限元代码ANSYS中组装的参数设计语言进行的。通过对桩支撑的15层建筑的基础和超结构的动态分析,将参与者对结构动态响应的影响将通过桩土 - 筏基础的各种动态参数描述。结果不仅与一般互动理论所吸引的一些结论达成协议,而且还有一般性分析涉及的现象。即使有68桩的有限元啮合物,通过呈现的手段,也可以有效且快速地满足PGSS(桩基 - 土壤 - 上层建筑)系统的时间历史分析程序和各种SSI参数的定性评估。这些结果可能对设计人员有所帮助,以便快速评估依赖于桩基基础的任何类型或布局的高层建筑物的相互作用效果的重要性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号