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Bridge Structure Dynamic Analysis under Vessel Impact Loading considering Soil-Pile Interaction and Linear Soil Stiffness Approximation

机译:考虑土-桩相互作用和线性刚度近似的容器冲击荷载下桥梁结构动力分析

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摘要

The appropriate modeling of the soil-pile interaction (SPI) is critical to get the reasonable dynamic responses of bridge structure under impact loading. Of various SPI modeling approaches, utilizing p-y and t-z curves is a common method to represent the nonlinear lateral resistance and skin friction of pile-surrounding soil. This paper accomplished SPI modeling for the bridge pylon impact analysis with compression-only nonlinear springs and linear dashpots. The kinematic interaction and pile group effect were incorporated into the SPI. A variety of pylon impact analyses were conducted under energy-variation impact loads. The structure dynamic responses were compared and discussed considering the influences of pile group effect, soil damping, and axial t-z spring. An approximate approach was proposed to derive the linearized stiffness of soil for the purpose of engineering calculation. It was concluded from the extensive simulations that the impact load generated from higher initial energy induced more significant structural responses and larger soil inelastic deformation than smaller initial energy. The piles in the leading row possessed larger bending moments, whereas they exhibited smaller pile deformation than the responses of trailing row piles. Soil damping applied in SPI played positive roles on the reduction of structural responses. Replacing the t-z spring by fixing the degree-of-freedom (DOF) in the vertical direction was capable to yield satisfactory results of structural responses. The proposed linear soil stiffness was demonstrated to be applicable in the SPI modeling of structure impact analysis.
机译:土-桩相互作用(SPI)的适当建模对于获得冲击荷载下桥梁结构的合理动力响应至关重要。在各种SPI建模方法中,利用p-y和t-z曲线表示桩周围土体的非线性侧向阻力和蒙皮摩擦是一种常用方法。本文使用仅压缩的非线性弹簧和线性阻尼器完成了桥塔冲击分析的SPI建模。运动学相互作用和桩群效应被纳入SPI。在能量变化冲击载荷下进行了各种塔架冲击分析。考虑群桩效应,土壤阻尼和轴向t-z弹簧的影响,对结构动力响应进行了比较和讨论。为了工程计算的目的,提出了一种近似方法来推导土壤的线性刚度。从广泛的模拟得出的结论是,与较小的初始能量相比,较高的初始能量产生的冲击载荷引起更大的结构响应和较大的土壤非弹性变形。前排中的桩具有较大的弯矩,而桩的变形小于后排桩的响应。 SPI中的土壤阻尼对减少结构响应起了积极作用。通过在垂直方向上固定自由度(DOF)来替换t-z弹簧,可以产生令人满意的结构响应结果。所提出的线性土壤刚度被证明可用于结构冲击分析的SPI建模。

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