Efficient seismic analysis for nonlinear soil-structure interaction with a thick soil layer

被引:0
作者
Gao Zhidong
Zhao Xu
Zhao Mi
Du Xiuli
Wang Junjie
Liu Pengcheng
机构
[1] Key Laboratory of Urban Security and Disaster Engineering of Ministry of Education,Beijing University of Technology
[2] Tongji University,College of Civil Engineering
来源
Earthquake Engineering and Engineering Vibration | 2021年 / 20卷
关键词
soil-structure interaction; thick soil layer; efficient analysis; absorbing boundary;
D O I
暂无
中图分类号
学科分类号
摘要
The direct finite element method is a type commonly used for nonlinear seismic soil-structure interaction (SSI) analysis. This method introduces a truncated boundary referred to as an artificial boundary meant to divide the soil-structure system into finite and infinite domains. An artificial boundary condition is used on a truncated boundary to achieve seismic input and simulate the wave radiation effect of infinite domain. When the soil layer is particularly thick, especially for a three-dimensional problem, the computational efficiency of seismic SSI analysis is very low due to the large size of the finite element model, which contains an whole thick soil layer. In this paper, an accurate and efficient scheme is developed to solve the nonlinear seismic SSI problem regarding thick soil layers. The process consists of nonlinear site response and SSI analysis. The nonlinear site response analysis is still performed for the whole thick soil layer. The artificial boundary at the bottom of the SSI analysis model is subsequently relocated upward from the bottom of the soil layer (bedrock surface) to the location nearest to the structure as possible. Finally, three types of typical sites and underground structures are adopted with seismic SSI analysis to evaluate the accuracy and efficiency of the proposed efficient analysis scheme.
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页码:553 / 565
页数:12
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