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Automated procedure to derive convex failure envelope formulations for circular surface foundations under six degrees of freedom loading

机译:自动化程序,用于在六个自由载荷下获得圆形表面基础的凸起故障包络配方

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Failure envelope formulations are typically employed to assess the ultimate capacity of foundations under combined loading and for incorporation in macro-element models. However, the complex interaction between each load component, especially for six degree of freedom (6DoF) loading, means that determining satisfactory formulations is often a complex process. Previous researchers have identified this difficulty as an obstacle to the adoption of the failure envelope approach in foundation engineering applications. To address this issue, the paper describes a systematic procedure for deriving globally convex failure envelope formulations; the procedure is applied to a circular surface foundation, bearing on undrained clay, in 6DoF load space. The formulations are shown to closely represent the failure load combinations determined from finite element analyses for a variety of loading conditions, including non-planar horizontal-moment loading. An example macro-element model based on the proposed formulation is described; the macro-element model provides a close representation of the foundation behaviour determined from a separate finite element analysis. A key aspect of the paper is that it demonstrates an automated process to determine well-behaved failure envelope formulations. The automated nature of the process has considerable advantages over the manual procedures that have previously been employed to determine failure envelope formulations.
机译:故障包膜配方通常用于评估组合负载下的基础的最终能力,并在宏观元素​​模型中掺入。然而,每个负载部件之间的复杂相互作用,特别是对于六度自由度(6dof)负载,这意味着确定令人满意的制剂通常是复杂的方法。以前的研究人员已经确定了这种难以通过基础工程应用中采用故障包络方法的障碍。为了解决这个问题,介绍了导出全球凸起故障包络配方的系统过程;该程序适用于圆形表面基础,在6dof负载空间中轴承轴承轴承。示出了制剂,以密切地表示从有限元分析中确定的失效载荷组合,包括各种负载条件,包括非平面水平时刻载荷。描述了一种基于所提出的制剂的示例宏观元素模型;宏元素模型提供了从单独的有限元分析确定的基础行为的近似表示。本文的一个关键方面是它展示了确定乖巧的故障包膜配方的自动化过程。该过程的自动性质与先前采用的手动程序具有相当大的优点,以确定故障包膜配方。

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