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Simulation of Torsionally Loaded Deep Foundations Considering State-Dependent Load Transfer

机译:考虑状态相关荷载传递的扭转荷载深基模拟

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Deep foundations may need to resist torsional loads, resulting from wind loading on traffic sign and signal pole structures, or seismic loading on curved or skewed bridges. Although design methods for deep foundations at the ultimate limit states are readily available, no significant effort exists to quantify the accuracy of existing load transfer-based torsion-rotation methods to predict the full-scale, in-service rotation performance that considers state-dependence of the soil. To facilitate the serviceability and ultimate limit state design of geometrically variable deep foundations constructed in multilayered soils, this paper presents a torsional load transfer method using a finite-difference model (FDM) framework. Simplified state-dependent load transfer models that relate the unit torsional resistance to the magnitude of relative displacement are developed considering soil-structure interface shear test results. The proposed FDM methodology is validated by comparison with existing analytical solutions and with physical model tests. Parametric studies are conducted to illustrate the role of various design parameters and demonstrate significant effects of nonlinear soil-structure response on the torsional behavior of deep foundations, including the effects of pressure-dependent softening at the soil-structure interface. (C) 2018 American Society of Civil Engineers.
机译:深厚的地基可能需要抵抗由交通标志和信号杆结构上的风荷载或弯曲或倾斜的桥梁上的地震荷载引起的扭转荷载。尽管可以很容易地获得用于极限极限状态的深基础的设计方法,但仍没有进行大量工作来量化现有的基于载荷传递的扭转-旋转方法的准确性,从而可以预测考虑状态相关性的全面,在役旋转性能的土壤。为了促进多层土中几何可变深层基础的可使用性和极限状态设计,本文提出了一种使用有限差分模型(FDM)框架的扭转荷载传递方法。考虑到土-结构界面的剪切试验结果,建立了简化的,取决于状态的载荷传递模型,该模型将单位扭转阻力与相对位移的大小相关联。通过与现有分析解决方案和物理模型测试进行比较,可以验证所提出的FDM方法论。进行了参数研究,以说明各种设计参数的作用,并证明了非线性土-结构响应对深基础扭转特性的重大影响,包括土-结构界面处依赖压力的软化作用。 (C)2018美国土木工程师学会。

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