首页> 外文期刊>Engineering Structures >A parametric study on the evaluation of ductility demand distribution in multi-degree-of-freedom systems considering soil-structure interaction effects
【24h】

A parametric study on the evaluation of ductility demand distribution in multi-degree-of-freedom systems considering soil-structure interaction effects

机译:考虑土-结构相互作用效应的多自由度系统延性需求分布评估的参数研究

获取原文
获取原文并翻译 | 示例

摘要

The current code-compliant design lateral load patterns are based on the elastic behavior of fixed-base structures without considering soil-structure interaction (SSI) effects. As a result, the implementation of such a load pattern in seismic design of soil-structure systems may not be appropriate. Moreover, recently several new optimum loading patterns have been proposed by researchers for fixed-base systems while their adequacy for soil-structure systems have not been evaluated yet. This paper performs intensive parametric analyses of 7200 nonlinear multi-degree-of freedom (MDOF) systems with SSI subjected to a group of 30 earthquakes recorded on alluvium and soft soils to investigate the effect of SSI on height-wise distribution of ductility demands. Effect of many parameters including fundamental period, level of inelastic behavior, number of stories, damping model, damping ratio, structural strain hardening, earthquake excitation, level of soil flexibility, aspect ratio on height-wise distribution of damage (ductility demand) are intensively investigated. In addition, the adequacy of three different code-complaint lateral loading patterns including UBC-97, IBC-2009 and EuroCode-8 as well as three recently proposed optimum loading patterns for fixed-base structures are parametrically investigated for soil-structure systems by two methods associated to the economy of the seismic-resistant system. Results of this study indicate that among the aforementioned code-specified design lateral load patterns, UBC-97, generally, has the best performance in soil-structure systems. However, all of them loose their efficiency when the SSI effect is severe and inelastic response is pronounced. It is also demonstrated that although the structures designed according to some recently proposed optimum load patterns may have generally better seismic performance when compared to those designed by code-specified load patterns, their seismic performances are far from the optimum if the SSI effects are considered, and their efficiency significantly reduces with increasing the soil flexibility.
机译:当前符合规范的设计侧向荷载模式是基于固定基础结构的弹性行为,而不考虑土壤-结构相互作用(SSI)的影响。结果,在土壤结构系统的抗震设计中实施这种载荷模式可能是不合适的。此外,最近研究人员针对固定基础系统提出了几种新的最佳加载模式,但尚未评估它们对土壤结构系统的适用性。本文对7200个非线性多自由度(MDOF)系统进行了深入的参数分析,这些系统的SSI受到了在冲积层和软土上记录的30次地震的影响,以研究SSI对延性需求高度分布的影响。强烈地考虑了许多参数,包括基本周期,非弹性行为水平,层数,阻尼模型,阻尼比,结构应变硬化,地震激励,土壤柔性水平,长宽比对损伤的高度分布(延性要求)的影响。调查。此外,针对土壤结构系统,通过两个参数研究了三种不同的代码投诉横向荷载模式(包括UBC-97,IBC-2009和EuroCode-8)的适用性,以及最近提出的三种针对固定基础结构的最佳荷载模式。与抗震系统经济相关的方法。这项研究的结果表明,在上述规范指定的设计侧向荷载模式中,UBC-97通常在土壤结构系统中具有最佳性能。但是,当SSI效果严重且反应明显无弹性时,所有这些方法都会失去效率。还证明了,尽管与根据规范指定的载荷模式设计的结构相比,根据一些最近提出的最佳载荷模式设计的结构通常具有更好的抗震性能,但如果考虑SSI效应,其抗震性能远非最佳,随着土壤柔韧性的提高,它们的效率大大降低。

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