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Temperature-driven fatigue life of reinforced concrete integral bridge pile considering nonlinear soil-structure interaction

机译:考虑非线性土结构相互作用的钢筋混凝土整体桥桩温度驱动疲劳寿命

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摘要

In this study, a five-span fully integral reinforced concrete (RC) bridge has been investigated for fatigue life assessment of its RC piles considering the effects of environmental temperature variation and nonlinear soil characteristics. The effect of daily temperature variation on the abutment wall and pile foundation has been estimated. Multilayers of soil along the abutment pile depth have been considered in the formulations. The soil has been represented as 3D nonlinear springs. A new fatigue model has been used for crack initiation and propagation in the RC piles. In this model, a crack has been assumed to progress successively in three stages from the tension side of the pile. Finite element (FE)-based modeling and analyses have been carried out to determine the longitudinal displacements and bending moment in piles, abutments, and piers. Furthermore, taking the bending moment as input crack mouth opening distance, crack propagation and fatigue life of pile have been assessed using the FE method-based software. It is seen that the abutment piles suffer fatigue damage earlier as compared to the pier-piles as a result of thermal and vehicular loads effects. Also, thermal fluctuation has shown little or no fluctuations in the longitudinal displacements of abutment and piles in the multispan fully integral bridge (FIB). It is expected that the proposed method will be helpful for the bridge engineers in designing the pile foundation passing through multiple soil layers against fatigue damage of a FIB in particular subjected to thermal and vehicular loading.
机译:在本研究中,考虑到环境温度变化和非线性土壤特性的影响,研究了五跨度完全整体的钢筋混凝土(RC)桥用于其RC桩的疲劳寿命评估。估计了日常温度变化对邻接壁和桩基的影响。在配方中考虑了沿着基台堆深度的土壤多层。土壤已代表为3D非线性弹簧。一种新的疲劳模型已用于RC桩中的裂纹启动和传播。在该模型中,假设裂缝从桩的张力侧连续三个阶段进行。已经进行了有限元(FE)的建模和分析,以确定堆积,基台和码头中的纵向位移和弯矩。此外,通过基于FE方法的软件评估弯曲瞬间作为输入裂缝口开口距离,裂缝传播和桩的疲劳寿命。可以看出,由于热量和车辆载荷效应,邻接桩与码头桩相比疲劳损坏。此外,热量波动在多层完全整体桥(FIB)中的跨越和堆积中的纵向位移很少或没有波动。预计该方法将有助于桥梁工程师在设计通过多种土壤层的桩基抵抗疲劳损坏,特别是对纤维的疲劳损坏特别受到热和车辆载荷。

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