Predicting Roll Damping for Barge-Type FPSO Using CFD

A. Koop, Frederick Jaouen, Xavier Wadbled, Erwan Corbineau
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Abstract

An accurate prediction of the non-linear roll damping is required in order to calculate the resonant roll motion of moored FPSO’s. Traditionally, the roll damping is obtained with model tests using decays or forced roll oscillation tests. Calculation methods based on potential flow are not capable of predicting this hydrodynamic damping accurately as it originates from the viscous nature of the fluid and the complex vortical flow structures around a rolling vessel. In recent years Computational Fluid Dynamics (CFD) has advanced such that accurate predictions for the roll damping can be obtained. In this paper CFD is employed to predict the roll damping for a barge-type FPSO. The objectives of the paper are to investigate the capability and accuracy of CFD to determine roll damping of an FPSO and to investigate whether two-dimensional calculations can be used to estimate the roll damping of a three-dimensional FPSO geometry. To meet these objectives, extensive numerical sensitivity studies are carried out for a 2D hull section mimicking the midsection of the FPSO. The numerical uncertainty for the added mass and damping coefficients were found to be 0.5% and 2%, respectively. The influence of the turbulence model was found to be significant for the damping coefficient with differences up to 14%. The 2D CFD results are compared to results from two-dimensional model tests. The calculated roll damping using the k-ω SST 2003 turbulence model matches the value from the experiments within 2%. The influence of various physical parameters on the damping was investigated through additional 2D calculations by changing the scale ratio, the roll amplitude, the roll period, the water depth, the origin of rotation and the bilge keel height. Lastly, three-dimensional calculations are carried out with the complete FPSO geometry. The 3D results agree with the 2D results except for the largest roll amplitude calculated, i.e. for 15 degrees, where the damping coefficient was found to be 7% smaller. For this amplitude end-effects from the ends of the bilge keels seem to have a small influence on the flow field around the bilge keels. This indicates that the 2D approach is a cost-effective method to determine the roll damping of a barge-type FPSO, but for large roll amplitudes or for different vessel geometries the 2D approach may not be valid due to 3D effects.
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基于CFD的驳船型FPSO横摇阻尼预测
为了计算系泊FPSO的共振横摇运动,需要精确预测非线性横摇阻尼。传统上,横摇阻尼是通过使用衰减或强制横摇试验的模型试验来获得的。由于流体的粘性和船舶周围复杂的涡流结构,基于势流的计算方法不能准确地预测这种水动力阻尼。近年来,计算流体力学(CFD)的发展使得对横摇阻尼的精确预测成为可能。本文采用CFD方法对某驳船型FPSO的横摇阻尼进行了预测。本文的目的是研究CFD确定FPSO横摇阻尼的能力和准确性,以及研究二维计算是否可以用于估计FPSO三维几何结构的横摇阻尼。为了实现这些目标,对模拟FPSO中部的2D船体部分进行了广泛的数值敏感性研究。结果表明,增加质量系数和阻尼系数的数值不确定性分别为0.5%和2%。湍流模型对阻尼系数的影响显著,差异可达14%。将二维CFD计算结果与二维模型试验结果进行了比较。采用k-ω SST 2003湍流模型计算的横摇阻尼与试验值在2%以内匹配。通过附加二维计算,研究了不同物理参数对减振的影响,包括改变水尺比、横摇振幅、横摇周期、水深、旋转原点和舱底龙骨高度。最后,根据FPSO的完整几何结构进行三维计算。三维结果与二维结果一致,除了计算的最大横摇幅,即15度时,阻尼系数小7%。在这种振幅下,舱底龙骨端部的末端效应对舱底龙骨周围流场的影响似乎很小。这表明,2D方法是一种经济有效的方法来确定驳船型FPSO的横摇阻尼,但对于大的横摇振幅或不同的船舶几何形状,2D方法可能由于3D效应而无效。
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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