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Numerical simulation of scour around a submarine pipeline using computational fluid dynamics and discrete element method

机译:利用计算流体力学和离散元方法对海底管道冲刷进行数值模拟

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摘要

HighlightsNumerical simulation of scour around a pipeline using a coupled CFD-DEM model.Simulated scour evolution is in good agreement with published experimental results.Detailed information, e.g., particle position, velocity, and force, is obtained to improve the understanding of scour mechanism.Particle motion and particle–particle interactions are found to be most intense during tunnel erosion stage.Both pressure gradient and drag forces are important at onset and early stages of scour, but drag is dominant at the last stage.AbstractScour under a submarine pipeline can lead to structural failure; hence, a good understanding of the scour mechanism is paramount. Various numerical methods have been proposed to simulate scour, such as potential flow theory and single-phase and two-phase turbulent models. However, these numerical methods have limitations such as their reliance on calibrated empirical parameters and inability to provide detailed information. This paper investigates the use of a coupled computational fluid dynamics-discrete element method (CFD-DEM) model to simulate scour around a pipeline. The novelty of this work is to use CFD-DEM to extract detailed information, leading to new findings that enhance the current understanding of the underlying mechanisms of the scour process. The simulated scour evolution and bed profile are found to be in good agreement with published experimental results. Detailed results include the contours of the fluid velocity and fluid pressure, particle motion and velocity, fluid forces on the particles, and inter-particle forces. The sediment transport rate is calculated using the velocity of each single particle. The quantitative analysis of the bed load layer is also presented. The numerical results reveal three scour stages: onset of scour, tunnel erosion, and lee-wake erosion. Particle velocity and force distributions show that during the tunnel erosion stage, the particle motion and particle–particle interactive forces are particularly intense, suggesting that single-phase models, which are unable to account for inter-particle interactions, may be inadequate. The fluid pressure contours show a distinct pressure gradient. The pressure gradient force is calculated and found to be comparable with the drag force for the onset of scour and the tunnel erosion. However, for the lee-wake erosion, the drag force is shown to be the dominant mechanism for particle movements.
机译: 突出显示 使用耦合的CFD-DEM模型对管道周围的冲刷进行数值模拟。 模拟的冲刷演变与已发布的实验结果非常吻合。 详细获取信息,例如粒子位置,速度和力,以增进对冲刷机理的理解。 在隧道侵蚀阶段,颗粒运动和颗粒间的相互作用最强烈。 两个压力梯度和阻力在冲刷的初期和初期都很重要,但阻力在末期占主导地位。 摘要 海底管道下的冲洗会导致结构故障;因此,充分了解冲刷机制至关重要。已经提出了各种数值方法来模拟冲刷,例如势流理论以及单相和两相湍流模型。但是,这些数值方法具有局限性,例如它们依赖于校准的经验参数以及无法提供详细信息。本文研究了使用耦合计算流体动力学离散元方法(CFD-DEM)模型来模拟管道周围的冲刷。这项工作的新颖之处在于使用CFD-DEM提取详细信息,从而获得新发现,从而增强了对冲刷过程潜在机制的当前理解。发现模拟的冲刷演变和床形与已发表的实验结果非常吻合。详细的结果包括流体速度和流体压力,颗粒运动和速度,颗粒上的流体作用力以及颗粒间作用力的轮廓。使用每个单个粒子的速度来计算沉积物的传输速率。还介绍了床层的定量分析。数值结果揭示了三个冲刷阶段:冲刷开始,隧道侵蚀和尾迹侵蚀。质点速度和力分布表明,在隧道侵蚀阶段,质点运动和质点间的相互作用力特别强烈,这表明无法解释质点间相互作用的单相模型可能不足。流体压力轮廓显示出明显的压力梯度。计算压力梯度力,发现它与拉力的爆发和隧道侵蚀的拉力相当。但是,对于后风侵蚀,阻力是颗粒运动的主要机制。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2018年第3期|400-416|共17页
  • 作者单位

    Centre for Offshore Research and Engineering, Department of Civil and Environmental Engineering, National University of Singapore;

    Centre for Offshore Research and Engineering, Department of Civil and Environmental Engineering, National University of Singapore;

    Department of Water Resources and Environmental Engineering, Tamkang University;

    School of Civil & Environmental Engineering, Nanyang Technological University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Scour; Sediment transport; CFD; Discrete element method; Submarine pipeline;

    机译:冲刷;泥沙输送;CFD;离散元法;海底管道;

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