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Experimental and numerical study of wave-induced backfilling beneath submarine pipelines

机译:海底管道下方波浪回填的实验与数值研究

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This paper presents results of complementary experimental and numerical studies involving wave-induced backfilling of current-generated scour holes beneath submarine pipelines. The laboratory experiments are conducted in a wave-plus-current flume, utilizing Laser Doppler Anemometry to measure velocities, synchronized flow visualizations using digital image technology, along with live-bed scour and backfilling measurements. Each experiment is based on a two-stage process: (1) initial scour induced by a pure current, followed by: (2) backfilling induced by pure waves (either regular or irregular). The time series of scour depths are closely monitored through video recordings. Systematic analysis of these has resulted in a closed form expression for the backfilling time scale, which is demonstrated to be a full order of magnitude greater than the well-known time scale of scour (with both governed primarily by the Shields parameter). The developed expression is strictly valid for the current-to-wave backfilling scenarios considered, while likely serving as an upper limit for more general wave-induced backfilling circumstances. The experiments are complemented by similar backfilling simulations utilizing a fully-coupled hydrodynamic and morphodynamic CFD model. The numerical simulations demonstrate the ability of the model to predict backfilling towards expected equilibrium scour depths based on the new wave climate, with time scales reasonably in line with experimental expectations. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文介绍了涉及海底管道下方电流产生的冲刷孔的波浪诱导回填的补充实验和数值研究的结果。实验室实验是在波浪加电流的水槽中进行的,利用激光多普勒风速仪测量速度,使用数字图像技术进行同步流动可视化,并进行活床冲刷和回填测量。每个实验均基于两个阶段的过程:(1)由纯电流引起的初始冲刷,然后:(2)由纯波浪(规则或不规则)引起的回填。冲刷深度的时间序列通过视频记录进行密切监控。对这些内容进行系统分析后,得出了回填时间量表的闭式表达式,事实证明,该表达式比众所周知的冲刷时间量表大两个数量级(二者均主要由Shields参数控制)。所开发的表达式对于所考虑的当前到波浪的回填情况严格有效,同时可能是更一般的波浪引起的回填情况的上限。利用完全耦合的流体动力学和形态动力学CFD模型的类似回填模拟对实验进行了补充。数值模拟表明,该模型能够基于新的浪潮气候预测回填至预期平衡冲刷深度的能力,其时间尺度与实验预期合理地吻合。 (C)2016 Elsevier B.V.保留所有权利。

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