两相流诱导振动对 J 型柔性管道影响的实验研究

IF 3.4 2区 工程技术 Q1 ENGINEERING, MECHANICAL Journal of Fluids and Structures Pub Date : 2024-01-16 DOI:10.1016/j.jfluidstructs.2023.104057
D.J. Pickles , G. Hunt , A.J. Elliott , A. Cammarano , G. Falcone
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引用次数: 0

摘要

管道内的多相流在各种工程应用中都会发生,包括近海深水油气运输。管道内部流动引起的振动会导致管道机械故障,从而导致输送流体失控释放。在海底应用中,柔性 J 型立管常被用来将生产的流体从海底输送到主机平台。尽管海底碳氢化合物泄漏可能会带来重大责任,但对于大型加压柔性 J 型三通管中的流动诱导振动如何导致系统完整性损失的研究却明显不足。以往的研究一般集中在刚性管道或小规模、无压力柔性立管的响应上。本研究调查了一根长 10 米、内径 50.8 毫米、含有拉伸铠装螺旋结构的复合立管在 10.8 barg 压力和环境温度下对各种水氮两相流的响应。高速摄像机用于研究柔性立管两端的流动结构,而同步表面安装的应变仪和加速度计则用于研究管道的响应。获取的时间平均数据用于评估管道的总体响应,而对波动的统计分析则突出了管道的运动。一维模拟和计算流体动力学模拟用于确定实验测试矩阵,并进一步了解 J 型立管内部的流动结构。研究发现,单相气体流动不会导致 J 型直管发生明显移动,而多相流动则会导致管道发生明显的平面移动。提高液体流速(或降低气体流速)会增加管道的平均应变。在气体流速较低时,管道围绕其平均位置平稳摆动,但在气体流速较高时,则会出现剧烈的间歇性鞭打运动。后者会使管道产生较大的平面内和平面外运动,从而对系统的完整性构成威胁。这项研究为大规模工程应用中流体与结构的相互作用提供了新的见解,有助于改进系统设计和控制。
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An experimental investigation into the effect two-phase flow induced vibrations have on a J-shaped flexible pipe

Multiphase flow inside of pipes occurs in a wide variety of engineering applications, including offshore deep-water oil and gas transport. Vibrations induced by the flow inside of the pipe can lead to its mechanical failure and thus lead to uncontrolled release of the fluids being transported. In subsea applications, flexible J-risers are often employed to deliver the produced fluids from the seafloor to the host platform. Despite the potentially significant liabilities associated with subsea hydrocarbon leaks, there has been a distinct lack of investigations into how flow induced vibrations in large scale, pressurised flexible J-risers can lead to system integrity loss. Previous investigations have generally focused on the response of rigid pipes or small scale, unpressurised flexible risers. This study presents an investigation into the response of a 10 m long, 50.8 mm internal diameter composite riser containing a tensile armour helical structure to a variety of two-phase, water-nitrogen flows at 10.8 barg of pressure and ambient temperature. High speed cameras were used to investigate the structure of the flow at either end of the flexible riser, whilst synchronised surface mounted strain gauges and accelerometers were used to investigate the response of the pipe. Time-averaged data were acquired to assess the general response of the pipe, whilst a statistical analysis of the fluctuations highlighted the movement of the pipe. One-dimensional and computational fluid dynamics simulations were used to define the experimental test matrix and provide further insight into the structure of the flow inside the J-riser. Single-phase gas flow was found not to cause the J-riser to move significantly, whilst multiphase flow led to significant in-plane movement of the pipe. Increasing the liquid flow rate (or decreasing the gas flow rate) increased the mean strain experienced by the pipe. At low gas flow rates, the pipe oscillated smoothly about its mean position, but at higher gas flow rates a violent intermittent whipping motion was observed. The latter produced large in-plane and out-of-plane movement of the pipe which could pose a threat to system integrity. This work offers new insights into fluid-structure interactions in large scale engineering applications, contributing to improved system design and control.

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来源期刊
Journal of Fluids and Structures
Journal of Fluids and Structures 工程技术-工程:机械
CiteScore
6.90
自引率
8.30%
发文量
173
审稿时长
65 days
期刊介绍: The Journal of Fluids and Structures serves as a focal point and a forum for the exchange of ideas, for the many kinds of specialists and practitioners concerned with fluid–structure interactions and the dynamics of systems related thereto, in any field. One of its aims is to foster the cross–fertilization of ideas, methods and techniques in the various disciplines involved. The journal publishes papers that present original and significant contributions on all aspects of the mechanical interactions between fluids and solids, regardless of scale.
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