CFD Simulation of Vortex-Induced Vibration of a Flexible Riser With Buoyancy Module Under Uniform Flow Using a Two-Way Coupled Model

Pub Date : 2023-06-11 DOI:10.1115/omae2023-103724
Karthikeyan S., Nallayarasu S.
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Abstract

Abstract The buoyancy modules are generally used as an attachment to the risers to increase the axial tension, such as top tensioned drilling risers. Consequently, these modules change the fluid-structure interaction, leading to a change in the response characteristics. Literature indicates limited information on the VIV response characterization of the flexible riser with the buoyancy module. An investigation into the VIV characteristics of flexible risers with buoyancy modules has been carried out and presented in this article. The buoyancy module geometry is one of the important parameters influencing the VIV response of the flexible riser. The study was conducted using a two-way coupled fluid-structure interaction model including the influence of buoyancy module length on the VIV response of flexible riser for L/D = 100, m* = 2.55, and EI = 2.95 at various reduced Velocity (Vr) in uniform current using CFD simulation. The time domain results obtained from CFD simulation such as force coefficients and VIV responses are converted into frequency domain responses using Fast Fourier Transform (FFT). It was observed that the inline and crossflow displacement responses showed double peak frequency responses. It is observed that the lower frequency corresponds to the riser with a buoyancy module and the higher frequency corresponds to the bare riser. The buoyancy module acts as a response controller in the crossflow direction, and the buoyancy module dominates the VIV response at a lower reduced velocity (Vr). The excitation of the lower frequency component is diminished as the Vr increases, and it shows that the bare riser dominates the riser VIV. However, the inline RMS response of the flexible riser with a buoyancy module is higher than the bare riser.
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均流条件下带浮力模块柔性立管涡激振动的双向耦合CFD模拟
浮力模块一般作为隔水管的附件,以增加轴向张力,如顶张式钻井隔水管。因此,这些模块改变了流固相互作用,导致响应特性的变化。文献表明,关于带有浮力模块的柔性立管的涡激振动响应特性的信息有限。本文对带有浮力模块的柔性立管的涡激振动特性进行了研究。浮力模块的几何形状是影响柔性立管涡激振动响应的重要参数之一。采用双向耦合流固耦合模型,通过CFD模拟研究了在均匀电流下不同降速(Vr)条件下,当L/D = 100、m* = 2.55、EI = 2.95时,浮力模块长度对柔性立管涡激振动响应的影响。利用快速傅立叶变换(Fast Fourier Transform, FFT)将CFD仿真得到的力系数和涡激振动响应等时域结果转换为频域响应。结果表明,纵向位移响应和横向位移响应均表现为双峰频率响应。观察到,较低的频率对应于带有浮力模块的立管,较高的频率对应于裸立管。浮力模块在横流方向上作为响应控制器,在较低的减速速度(Vr)下,浮力模块主导着涡激振动响应。低频分量的激励随隔水管的增大而减弱,表明裸隔水管占主导地位。然而,带有浮力模块的柔性立管的在线RMS响应高于裸立管。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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