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Towards a seismic capacity design of caisson foundations supporting bridge piers

机译:面向支撑桥墩的沉箱基础抗震设计

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The present work investigates, by means of finite element analysis in 3D, the nonlinear response under lateral monotonic and slow-cyclic loading of caisson foundations supporting bridge piers in cohesive soils. The study is performed with respect to the combined moment (M)-horizontal load (Q) on the foundation, and involves similar rigid cubic caissons carrying a column-mass superstructure of varying height (H) and pier-to-deck joint rigidity. The latter is simulated by a rotational spring at the deck level with parametrically varying stiffness, relating to the rigidity of the connection. The lateral load is imposed at the deck level, and the resulting M-Q load path on the caisson is mapped within the bounds of the respective failure envelope. The analysis revealed that due to pier-to-deck joint stiffness and the nonlinear coupling between the rotational and translational degrees of freedom at the foundation, the loading at the caisson head follows a nonlinear path characterized by the mobilization of a specific failure mechanism (identified as the "inverted" pendulum failure mode), triggered by the "negative effective height" effect. Interestingly, all load-paths display certain characteristics, such as a particular "overstrength" in bearing capacity that is mobilized by the foundation, irrespective of the stiffness properties and constraints at the superstructure system. Regarding the response under cyclic loading, the M-Q loops are shown to be well enveloped by the monotonic "backbone" curve for all examined cases. Finally, from the numerical results, a closed-form expression for the load-path is formulated, and a methodology to be used towards the seismic design of caisson foundations is proposed. (C) 2014 Elsevier Ltd. All rights reserved.
机译:本工作通过3D有限元分析,研究在粘性土壤中支撑桥墩的沉箱基础在横向单调和缓慢循环荷载下的非线性响应。该研究是针对地基上的组合弯矩(M)-水平载荷(Q)进行的,涉及类似的刚性立方沉箱,这些沉箱中承载着具有不同高度(H)和桥墩间刚度的柱体上部结构。后者通过甲板弹簧上的旋转弹簧来模拟,该弹簧具有与连接的刚度有关的参数变化的刚度。横向载荷施加在甲板上,并且沉箱上产生的M-Q载荷路径映射到相应破坏包络线的边界内。分析显示,由于墩台间的连接刚度以及基础旋转和平移自由度之间的非线性耦合,沉箱头部的载荷遵循非线性路径,其特征在于动员了特定的破坏机制(已确定如“反转”摆失败模式),由“负有效高度”效应触发。有趣的是,所有载荷路径都显示出某些特征,例如基础动员的承载能力的特定“超强度”,而与上部结构系统的刚度特性和约束无关。关于循环载荷下的响应,对于所有检查的情况,M-Q回路均被单调的“主干”曲线很好地包围。最后,从数值结果出发,建立了荷载路径的闭合形式,并提出了沉箱基础抗震设计的方法。 (C)2014 Elsevier Ltd.保留所有权利。

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