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A closed-form solution for kinematic bending of end-bearing piles

机译:端承桩运动弯曲的封闭形式解决方案

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摘要

Kinematic soil-pile interaction is indispensable for seismic design of pile foundations and superstructures. The current understanding of kinematic pile bending mostly relies on either continuum approaches, requiring complex numerical calculation or iterative decoupling, or Winkler beam approaches, overlooking the continuity and shear stiffness of soils. In this study, a closed-form solution was proposed for the kinematic bending of end bearing piles. In this solution, the conventional Beam-on-Dynamic-Winkler-Foundation (BDWF) was extended to incorporate the shear resistance of soils via Pasternak model. The proposed solution can provide an explicit analytical formulation for kinematic bending of end-bearing piles which is convenient for engineering practice. In addition, the proposed solution was compared with the conventional BDWF solution and the numerical solution, indicating that the proposed solution can maintain both accuracy and simplicity. At last, a series of parametric study was carried out and showed that the shear resistance of soils may considerably contribute to lowering the kinematic responses but increasing the maximum bending moment at the pile tip.
机译:运动性土-桩相互作用对于桩基础和上部结构的抗震设计是必不可少的。当前对运动桩弯曲的理解主要依靠连续方法,需要复杂的数值计算或迭代解耦,或者是Winkler梁方法,它忽略了土壤的连续性和剪切刚度。在这项研究中,提出了一种封闭形式的解决方案,用于端承桩的运动学弯曲。在该解决方案中,扩展了传统的动态维克勒基础梁(BDWF),以通过Pasternak模型纳入土壤的抗剪强度。所提出的解决方案可以为端承桩的运动弯曲提供一个明确的解析公式,方便工程实践。另外,将所提出的解决方案与传统的BDWF解决方案和数值解决方案进行了比较,表明所提出的解决方案可以保持准确性和简单性。最后,进行了一系列参数研究,结果表明,土壤的抗剪力可能会大大降低运动学响应,但会增加桩尖的最大弯曲力矩。

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