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Effect of numerical soil-foundation-structure modeling on the seismic response of a tall bridge pier via pushover analysis

机译:基于推覆分析的数值土-基础-结构模型对高桥墩地震响应的影响

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This paper examines the role of the numerical modeling of soil-foundation-structure (SFS) interaction on the seismic response of a tall, partially embedded, flared bridge pier. For this purpose, static, pushover, nonlinear, finite-element, stand-alone analyses are performed on nine different models of one of the two piers of the Mogollon Rim Viaduct, a long-span, reinforced-concrete bridge supported on pile foundations. Structural modeling considerations, such as selection of concrete constitutive models, material properties, and bond-slip and P-Delta effects, on the nonlinear response of this pier are investigated. p-y, t-z and Q-z nonlinear curves are applied to model the soil-pile interaction, and equivalent nonlinear springs are developed to reproduce the soil-pile cap interaction. In addition, the effects of the partial pier embedment and the slope of the ground surface on the lateral resistance of the pier and the total capacity of the SFS system are examined. The results illustrate how structural and geotechnical modeling approaches for the SFS interaction can affect the nonlinear response of tall bridges, and may lead to differences in the numerical prediction of local or global failure. For the case analyzed herein, the partial pier embedment and foundation flexibility can dramatically modify the structural response, and influence the bond-slip effect at the pier-pile cap connection. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文研究了土-基础-结构(SFS)相互作用的数值模型在一个高的,部分埋置的喇叭形桥墩的地震反应中的作用。为此,对Mogollon轮辋高架桥(支撑在桩基础上的大跨度钢筋混凝土桥梁)的两个桥墩之一的九种不同模型进行了静态,推覆,非线性,有限元独立分析。研究了结构建模方面的考虑因素,例如混凝土本构模型的选择,材料特性以及粘结滑移和P-Delta效应对该墩的非线性响应的影响。应用p-y,t-z和Q-z非线性曲线来模拟土-桩相互作用,并开发了等效的非线性弹簧来再现土-桩帽相互作用。此外,还检查了部分墩墩的埋入和地面的坡度对墩墩的侧向阻力和SFS系统总承载力的影响。结果表明,SFS相互作用的结构和岩土建模方法如何影响高层桥梁的非线性响应,并可能导致局部或整体破坏的数值预测上的差异。对于本文分析的情况,部分墩埋入和基础柔韧性会极大地改变结构响应,并影响墩-桩帽连接处的粘结滑移效应。 (C)2016 Elsevier Ltd.保留所有权利。

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