地震振动台
有限元法
结构工程
岩土工程
加速度
挡土墙
可塑性
地震荷载
单调函数
土工合成材料
地质学
材料科学
工程类
数学
物理
数学分析
经典力学
复合材料
作者
Hoe I. Ling,Songtao Yang,Dov Leshchinsky,Huabei Liu,Christopher J. Burke
出处
期刊:Journal of Engineering Mechanics-asce
[American Society of Civil Engineers]
日期:2010-05-01
卷期号:136 (5): 653-661
被引量:67
标识
DOI:10.1061/(asce)em.1943-7889.0000108
摘要
A finite-element procedure was used to simulate the dynamic behavior of four full-scale reinforced soil retaining walls subjected to earthquake loading. The experiments were conducted at a maximum horizontal acceleration of over 0.8 g, with two walls subjected to only horizontal accelerations and two other walls under simultaneous horizontal and vertical accelerations. The analyzes were conducted using advanced soil and geosynthetic models that were capable of simulating behavior under both monotonic and cyclic loadings. The soil behavior was modeled using a unified general plasticity model, which was developed based on the critical state concept and that considered the stress level effects over a wide range of densities using a single set of parameters. The geosynthetic model was based on the bounding surface concept and it considered the S-shape load-strain behavior of polymeric geogrids. In this paper, the calibrations of the models and details of finite-element analysis are presented. The time response of horizontal and vertical accelerations obtained from the analyses, as well as wall deformations and tensile force in geogrids, were compared with the experimental results. The comparisons showed that the finite-element results rendered satisfactory agreement with the shake table test results.
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