首页> 外文期刊>Earthquake Engineering and Engineering Vibration >Simulation of the response of base-isolated buildings under earthquake excitations considering soil flexibility
【24h】

Simulation of the response of base-isolated buildings under earthquake excitations considering soil flexibility

机译:考虑土层挠性的基础隔震建筑物在地震激励下的响应模拟

获取原文
获取原文并翻译 | 示例
           

摘要

The accurate analysis of the seismic response of isolated structures requires incorporation of the flexibility of supporting soil. However, it is often customary to idealize the soil as rigid during the analysis of such structures. In this paper, seismic response time history analyses of base-isolated buildings modelled as linear single degree-of-freedom (SDOF) and multi degree-of-freedom (MDOF) systems with linear and nonlinear base models considering and ignoring the flexibility of supporting soil are conducted. The flexibility of supporting soil is modelled through a lumped parameter model consisting of swaying and rocking spring-dashpots. In the analysis, a large number of parametric studies for different earthquake excitations with three different peak ground acceleration (PGA) levels, different natural periods of the building models, and different shear wave velocities in the soil are considered. For the isolation system, laminated rubber bearings (LRBs) as well as high damping rubber bearings (HDRBs) are used. Responses of the isolated buildings with and without SSI are compared under different ground motions leading to the following conclusions: (1) soil flexibility may considerably influence the stiff superstructure response and may only slightly influence the response of the flexible structures; (2) the use of HDRBs for the isolation system induces higher structural peak responses with SSI compared to the system with LRBs; (3) although the peak response is affected by the incorporation of soil flexibility, it appears insensitive to the variation of shear wave velocity in the soil; (4) the response amplifications of the SDOF system become closer to unit with the increase in the natural period of the building, indicating an inverse relationship between SSI effects and natural periods for all the considered ground motions, base isolations and shear wave velocities; (5) the incorporation of SSI increases the number of significant cycles of large amplitude accelerations for all the stories, especially for earthquakes with low and moderate PGA levels; and (6) buildings with a linear LRB base-isolation system exhibit larger differences in displacement and acceleration amplifications, especially at the level of the lower stories.
机译:对隔离结构的地震响应进行准确的分析需要结合支撑土的柔韧性。但是,通常在分析此类结构时将土壤理想化为刚性。在本文中,考虑并忽略了支撑的灵活性,建模为线性单自由度(SDOF)和多自由度(MDOF)的线性和非线性基础模型的基础隔离建筑物的地震响应时程分析进行土壤。支撑土壤的灵活性通过集总参数模型进行建模,该模型由摇摆和摇摆的弹簧缓冲器组成。在分析中,考虑了针对具有三个不同峰值地面加速度(PGA)水平,不同建筑模型的自然周期以及土壤中不同剪切波速度的不同地震激励的大量参数研究。对于隔离系统,使用了层压橡胶轴承(LRB)和高阻尼橡胶轴承(HDRB)。比较了在不同地面运动下有无SSI的隔离建筑物的响应,得出以下结论:(1)土壤的柔韧性可能会极大地影响上部结构的刚度响应,而可能只对柔韧性结构的响应产生轻微影响; (2)与带有LRB的系统相比,在隔离系统中使用HDRB会引起更高的结构峰响应; (3)尽管峰值响应受土壤柔韧性的影响,但它似乎对土壤中剪切波速度的变化不敏感; (4)随着建筑物自然周期的增加,SDOF系统的响应放大变得更接近单位,这表明在所有考虑的地震动,基础隔离和剪切波速度下,SSI效应与自然周期之间呈反比关系; (5)SSI的加入增加了所有层的大幅度加速度的有效循环次数,特别是对于PGA值较低和中等的地震; (6)具有线性LRB基础隔震系统的建筑物在位移和加速度放大上表现出较大的差异,尤其是在较低楼层的位置。

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