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Variation in Wave Forces on Buried Submarine Pipeline in Different types of Soils in Random Waves

机译:不同类型土壤中随机潜入海底管道中波浪力的变化

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Submarine pipelines encounter significant wave forces in shallow coastal waters due to the action of waves. In order to reduce such forces (also to protect the pipe against anchors and dropped objects) they are buried below the seabed. The wave force variation due to burial depends on the engineering characteristics of the sub soil like hydraulic conductivity and porosity, apart from the design environmental conditions. For a given wave condition, in certain type of soil, the wave force can reduce drastically with increased burial and in certain other type of soil, it may not. It is hence essential to understand how the wave forces (both horizontal and vertical) vary while the pipeline is buried in soils of different hydraulic conductivity. The selection of minimum safe burial depth of submarine pipelines mainly depends on the magnitude of wave force on the buried submarine pipeline. The minimum safe burial depth is the depth of burial at which the hydrodynamic forces encountered by the submarine pipelines do not destabilize them during the design environmental condition. The variation of wave forces on buried submarine pipeline is investigated using four different cohesion less soils with hydraulic conductivity varying from 0.286 mm/s to 1.84 mm/s. The physical modeling investigations were carried out for a wide range of random wave conditions (PM spectrum with significant wave heights from 5 to 20 cm and peak period from 1.0 to 3.0 s) and for different depth of burial. The horizontal and vertical hydrodynamic forces on the submarine pipeline were estimated by numerically integrating the measured dynamic pressures around the circumference of the pipe line at 12 points. It is found from the study that the horizontal force reduces with increase in depth of burial, and is less dependent on the hydraulic conductivity of the soil. Whereas, the vertical wave force varies quite significantly (generally increases up to certain depth of burial and reduces with further increase in depth of burial), mainly due to the significant change in the magnitude and the phase lag between the dynamic pore water pressures. In general, if the hydraulic conductivity is high (order of 1.84 mm/s), then varying the relative burial depth from e/D=0.5 to 1.5 does not provide appreciable advantage from the vertical force reduction point of view. On the other hand, for a soil with low hydraulic conductivity (order of 0.29 mm/s), changing the depth of burial from e/D=0.5 to 1.5 reduces the vertical wave force more than 50%, where 'e' is the vertical distance between the sea floor and pipeline bottom and 'D' is the pipeline diameter. For half buried (or half exposed) condition, the pipeline in the soil with high hydraulic conductivity attracts the least vertical force and attracts high vertical force in the soil with low hydraulic conductivity, due to appreciable Bernoulli effect in low hydraulic conductivity soil. The results of this study will help the submarine pipeline design engineers to select the minimum safe burial depth in a range of cohesion-less soil in a wide range of hydraulic conductivity and random wave conditions.
机译:由于波浪的作用,海底管道在浅海沿岸遇到了巨大的波浪力。为了减小这种力(还可以防止管道受到锚固和掉落的物体的伤害),它们被埋在海床下方。除设计环境条件外,埋葬引起的波浪力变化还取决于地下土的工程特性,如水力传导率和孔隙率。对于给定的波浪条件,在某些类型的土壤中,波浪力会随着埋葬的增加而急剧降低,而在某些其他类型的土壤中,波浪力可能不会急剧降低。因此,重要的是要了解在管道埋在不同水力传导率的土壤中时,波浪力(水平和垂直)如何变化。海底管道的最小安全埋深的选择主要取决于海底管道上波浪力的大小。最小安全埋葬深度是在设计环境条件下海底管道遇到的水动力不会破坏其稳定的埋葬深度。使用四种不同的无内聚力土壤,其水力传导率在0.286 mm / s至1.84 mm / s之间变化,研究了海底管道上波浪力的变化。对各种随机波条件(具有5至20 cm的显着波高和1.0至3.0 s的峰值周期的PM谱)以及不同的埋藏深度进行了物理建模研究。通过对在12点处围绕管道圆周的实测动压力进行数值积分,可以估算海底管道上的水平和垂直水动力。从研究中发现,水平力随着埋藏深度的增加而减小,并且对土壤的水力传导率的依赖性较小。而垂直波力变化很大(通常增加到一定的埋藏深度,然后随着埋藏深度的增加而减小),这主要是由于动态孔隙水压力之间的大小和相位滞后的显着变化。通常,如果水力传导率较高(1.84 mm / s的量级),则从垂直力减小的角度来看,将相对埋葬深度从e / D = 0.5更改为1.5不会提供明显的优势。另一方面,对于低水力传导率(0.29 mm / s量级)的土壤,将埋藏深度从e / D = 0.5更改为1.5会使垂直波力降低50%以上,其中“ e”为海底与管道底部之间的垂直距离,“ D”为管道直径。对于一半埋入(或一半裸露)情况,由于在低水力传导率土壤中有明显的伯努利效应,高水力传导率的土壤中的管道吸引的垂直力最小,而在低水力传导率的土壤中则吸引高的垂直力。这项研究的结果将有助于海底管道设计工程师在各种水力传导率和随机波条件下,在一系列无粘性的土壤中选择最小的安全埋藏深度。

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