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Physical modelling of pile-group effect on the local scour in submarine environments

机译:潜艇环境中局部冲刷的桩基效应物理建模

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Pile groups are extensively utilized to provide stability of offshore structures and bridges across rivers. Under the actions of waves and current, severe local scour can be induced around the pile groups in cohesionless soils, compromising the safety of structures significantly. An accurate prediction of local scour depth is difficult because the three-dimensional flow around pile groups is a complicated process. A series of flume tests were conducted in a novel water flume for flow-structure-soil interaction modelling, to investigate the local scour process around twin-pile groups. Two different hydrodynamic loading conditions, i.e., current alone and current plus waves, were adopted in the tests. The effects of the hydrodynamic loading conditions and the influence of the twin-pile layout on the scour have been investigated. It was found that compared with the maximum scour depths around a single pile, those around tandem twin-pile groups are generally a bit smaller while those around side-by-side twin-pile groups are remarkably larger, especially for the cases with small pile spacing. The observed maximum scour depth around side-by-side twin-pile groups with no separation can be nearly twice of that around a single pile. For the side-by-side arrangement, there is a qualitative agreement between the present results and the results of the preceding studies.
机译:桩基被广泛利用,以提供跨越河流的海上结构和桥梁的稳定性。在波浪和目前的作用下,严重的局部冲刷可以在粘性土壤中围绕桩基诱导,损害结构的安全性显着。准确预测局部冲刷深度是困难的,因为桩基周围的三维流动是一个复杂的过程。在新的水上管壳中进行了一系列水槽试验,用于流动 - 结构 - 土壤相互作用建模,以研究双桩群周围的局部洗涤过程。在测试中采用了两个不同的流体动力装载条件,即电流和电流加波。研究了流体动力载荷条件的影响及对腹部突出的影响。结果表明,与单桩周围的最大冲刷深度相比,串联双桩基的那些通常较小,而另一侧双桩基围绕着围绕着小桩基的液体较大,特别是对于小桩的案例间距。观察到的最大冲刷深度在没有分离的并排双桩组周围的最大冲刷深度可以是单一桩周围的两倍。对于并排的布置,目前的结果与前述研究结果之间存在定性协议。

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