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Modelling the variation of suction pressure during caisson installation in sand using FLAC3D

机译:使用FLAC3D对沉箱在沙子中安装期间的吸气压力变化进行建模

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摘要

A suction caisson is an upturned 'bucket' of cylindrical shape made from steel. This type of foundation has been very popular in the oil and gas industry and the current trend is to extend its use to offshore wind farms. Seepage conditions play a pivotal role in suction caisson installation process in sand. Pressure gradients generated by imposed suction inside the caisson cavity cause an overall reduction in the soil resistance around the caisson wall and tip. This transient soil loosening around the caisson wall helps caisson penetration into the seabed. In this paper, we present a study of the role of seepage on the suction caisson installation process in homogenous sand. We also investigate the effects of seepage conditions on soil resistance to caisson penetration with a particular focus on how frictional and tip resistances are differently affected. For this purpose, a series of numerical models are developed using FLAC3D. These models are used to investigate the variation of suction pressure during caisson installation in homogenous sand and to predict the amount of suction required to penetrate the caisson to a certain depth. An explicit strategy is used for each embedment depth, which consists of updating current suction based on displacement history available after the previous prescribed displacement increment. The numerical models are developed for different caisson sizes and wall thicknesses to study the effects of caisson geometry on soil resistance during caisson installation. Problem dimensions are normalised with respect to the diameter of the caisson in order to obtain the results that can be applied to any caisson size. The results showed that suction pressure tends to increase with the embedment depth. Additionally, the overall behaviour and the pressure variation with depth are similar for caissons of different sizes and wall thicknesses. Finally, in order to validate the developed numerical models, data from centrifuge tests are investigated and compared with the results obtained from this study. The developed finite difference models are found to be in good agreement with centrifuge tests, in particular for thicker caissons (t/D = 1%).
机译:吸水沉箱是由钢制成的上翘的圆柱形“桶”。这种类型的基础在石油和天然气行业非常受欢迎,当前的趋势是将其应用扩展到海上风电场。渗流条件在沙井沉箱安装过程中起着关键作用。沉箱腔内强加的吸力产生的压力梯度会导致沉箱壁和沉头周围的土壤阻力整体降低。沉箱壁周围这种暂时的土壤松动有助于沉箱渗入海床。在本文中,我们对渗流在均质砂土中吸水沉箱安装过程中的作用进行了研究。我们还研究了渗流条件对土壤对沉箱渗透的抵抗力的影响,特别着重于摩擦阻力和末端阻力如何受到不同的影响。为此,使用FLAC3D开发了一系列数值模型。这些模型用于研究在均匀沙子中安装沉箱期间吸气压​​力的变化,并预测穿透沉箱到一定深度所需的吸气量。每个嵌入深度都采用了一种明确的策略,该策略包括根据先前指定的位移增量后可用的位移历史来更新当前吸力。针对不同的沉箱尺寸和壁厚开发了数值模型,以研究沉箱几何形状对沉箱安装过程中土壤阻力的影响。问题尺寸相对于沉箱直径进行标准化,以获得可应用于任何沉箱尺寸的结果。结果表明,吸力趋于随埋深的增加而增大。另外,对于不同尺寸和壁厚的沉箱,总体行为和压力随深度的变化是相似的。最后,为了验证开发的数值模型,对离心机测试的数据进行了调查,并将其与本研究的结果进行了比较。发现开发的有限差分模型与离心测试非常吻合,特别是对于较厚的沉箱(t / D = 1%)。

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