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Evaluating the Penetration Resistance of Spudcan Foundations in Clay Overlying Sand

机译:评估粘土覆盖砂溅射基础的渗透性抗性

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Safe installation of mobile jack-up platforms requires accurate prediction of the vertical load-penetration curves of their large ~20 m diameter spudcan footings. Difficulties can arise due to a change of soil strength from a soft to a stiff layer. A substantial increase in the ultimate bearing capacity occurs when a spudcan penetrates vertically through a soft clay layer towards a sand layer. This is because the softer soil that is trapped beneath the spudcan base starts to be squeezed horizontally as the vertical load begins to be borne by the stronger underlying sand layer. The theoretical solution of the bearing capacity of a soil layer on a rigid base has conventionally been used to predict the spudcan penetration resistance in soft over strong layers. However, recent centrifuge experimental studies suggested that the design approaches recommended by current industry guidelines ISO (2016) and SNAME (2008) are not adequately accurate in predicting the sharp increase in the resistance prior to penetration into the sand layer. In this paper, large deformation finite element (LDFE) analyses that capture the evolving soil failure mechanisms during spudcan penetration in a clay layer overlying sand, and explore relationships for the penetration resistance, are reported. The Coupled Eulerian-Lagrangian method was used to simulate the continuous penetration of the spudcan foundation. The clay layer was modelled with the elastic perfectly plastic Tresca model, while the sand layer was modelled by the Mohr-Coulomb model using a nonassociated flow rule. The findings show that the increased capacity is associated with the squeezing mechanism, which starts at the depth where the bottom of the soil failure mechanism first touches the underlying sand layer. This is approximately a third of the spudcan diameter above the clay-sand interface. A simplified expression is proposed to predict the spudcan penetration resistance between the depth at which the squeezing prevails and the clay-sand interface.
机译:安全安装移动加盖平台需要精确地预测其大约20米直径的施晶犬基础的垂直载荷渗透曲线。由于从柔软到僵硬层的土壤强度的变化,可能会出现困难。当刺雀通过朝向砂层垂直渗透时,发生极限承载能力的大幅增加。这是因为捕获在炉峰底部下方的更柔软的土壤开始水平挤压,因为垂直载荷开始被更强的底层砂层承担。刚性底座上的土壤层的承载能力的理论溶液通常用于预测柔软在强大层中的溅射渗透性。然而,最近的离心机实验研究表明,目前行业指南ISO(2016)和SNAME(2008)建议的设计方法在预测渗透到砂层之前的抗性急剧增加方面没有充分准确。本文报道,大变形有限元(LDFE)分析捕获在粘土层上覆盖砂中溅射期间的演化土壤破坏机制,并探讨了渗透性阻力的关系。耦合的Eulerian-Lagrangian方法用于模拟Spudcan基础的连续渗透。粘土层用弹性完美的塑料Tresca模型进行建模,而使用非分配的流量规则,由MoHR-Coulomb模型建模砂层。结果表明,增加的容量与挤压机构相关联,该挤压机构开始于土壤破坏机构底部首先接触下面的砂层的深度。这大约是粘土砂界面上方的三分之一的三分之一。提出了一种简化的表达,以预测挤压挤压的深度与粘土砂界面之间的刺瓜渗透性。

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