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首页> 外文期刊>Journal of geotechnical and geoenvironmental engineering >A p-y Analysis of Laterally Loaded Offshore-Well Conductors and Piles Installed in Normally Consolidated to Lightly Overconsolidated Clays
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A p-y Analysis of Laterally Loaded Offshore-Well Conductors and Piles Installed in Normally Consolidated to Lightly Overconsolidated Clays

机译:对正常固结至轻度超固结黏土中安装的侧向加载的海上油井导线和桩的p-y分析

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This paper presents a cyclic equivalent spring (p-y) model describing lateral soil resistance on offshore well conductors and piles in normally to lightly overconsolidated clays subjected to fatigue cyclic motions. Improved understanding and characterization of cyclic lateral soil response is critical in fatigue assessment of well conductors and piles subjected to dynamic fatigue loads. Key features of the model include nonlinear load-displacement behavior with stiffness degradation during cyclic loading. The model provides a full description of soil resistance during lateral loading, including an initial short-excursion monotonic loading stage, a transient stage of progressive degradation in stiffness from the first excursion, and a steady-state stage involving minimal changes in soil stiffness after a large number of load cycles. The model input parameters obtained from back-analysis of data derived from centrifuge tests on model conductors subjected to harmonic lateral loads are presented in this paper. This model has capabilities of simulating random load sequences. Fatigue damage in well conductors and piles arises from changes in axial and bending stresses, with the latter being more dependent on lateral soil response. Accordingly, the proposed model is evaluated primarily in terms of its ability to accurately predict bending moments when the spring model is used in conjunction with a laterally loaded soil-structure interaction model. The model successfully predicts the maximum change in cyclic bending moment (change in moment during a load reversal) and the location of the maximum cyclic moment along the conductor depth approximately within a 20% range. This performance evaluation was derived by comparing the model computations/predictions to the test data from the centrifuge program and validated within the tests displacement range of 0.1D. The current form of the model does not consider consolidation effects, which may significantly affect long-term loading predictions used in fatigue life assessments.
机译:本文提出了一种循环当量弹簧(p-y)模型,该模型描述了承受疲劳循环运动的正常至轻度超固结黏土的海上油井导管和桩上的横向土壤阻力。对循环侧向土壤响应的更好理解和表征对于承受动态疲劳载荷的油井导管和桩的疲劳评估至关重要。该模型的关键特征包括非线性载荷-位移行为,在循环载荷过程中刚度会降低。该模型提供了侧向荷载过程中土壤阻力的完整描述,包括初始的短偏移单调荷载阶段,刚度从第一次偏移开始逐渐退化的过渡阶段以及稳态阶段,该阶段在土体受力后几乎没有变化。大量的负载循环。本文介绍了模型输入参数,该模型输入参数是通过对承受谐波侧向载荷的模型导体进行离心试验得出的数据进行反分析得出的。该模型具有模拟随机加载序列的功能。井壁导体和桩体的疲劳损伤是由轴向应力和弯曲应力的变化引起的,而轴向应力和弯曲应力更多地取决于横向土壤响应。因此,当弹簧模型与侧向荷载的土-结构相互作用模型结合使用时,主要根据其准确预测弯矩的能力来评估所提出的模型。该模型成功预测了循环弯矩的最大变化(负载反向过程中的力矩变化)以及沿导体深度的最大循环弯矩的位置大约在20%的范围内。通过将模型计算/预测与离心​​机程序的测试数据进行比较,得出此性能评估,并在0.1D的测试位移范围内进行了验证。该模型的当前形式未考虑固结效应,固结效应可能会严重影响疲劳寿命评估中使用的长期载荷预测。

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