Numerical Study of a Model and Full-Scale Container Ship Sailing in Regular Head Waves

Andreea Mandru, Liliana Rusu, A. Bekhit, F. Pacuraru
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Abstract

In the present study, the added resistance, heave, and pitch of the KRISO Container Ship (KCS) in waves, at both model scale and full scale, are predicted numerically in regular head waves, for four wavelengths and three wave heights. The ISIS-CFD viscous flow solver, implemented in the Fidelity Fine Marine software provided by CADENCE, was employed for the numerical simulations. The spatial discretization was based on the finite volume method using an unstructured grid. The unsteady Reynolds-averaged Navier–Stokes (RANS) equations were solved numerically, with the turbulence modeled by shear stress transport (k-ω) (SST). The free-surface capturing was based on the volume-of-fluid method. The computed solutions were validated through comparisons with towing test data available in the public domain. To predict the uncertainties in the numerical solution, a systematic grid convergence study based on the Richardson extrapolation method was performed for a single wave case on three different grid resolutions. Specific attention was given to the free-surface and wake flow in the propeller plane. The purpose was to compare the numerical results from the model- and full-scale tests to examine the scale’s effect on the ship’s performance in regular head waves. The comparison between the model scale and full scale showed obvious differences, less accentuated for the free-surface topology and clearly observed in terms of boundary layer formation in the propeller’s vicinity.
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模型和全尺寸集装箱船在规则顶浪中航行的数值研究
在本研究中,对 KRISO 集装箱船 (KCS) 在波浪中的附加阻力、侧倾和俯仰进行了数值预测,包括模型尺度和全尺度,以及四种波长和三种波高的规则顶波。数值模拟采用了 CADENCE 提供的 Fidelity Fine Marine 软件中的 ISIS-CFD 粘流求解器。空间离散化基于有限体积法,使用非结构网格。对雷诺平均纳维-斯托克斯(RANS)非稳态方程进行了数值求解,湍流由剪应力传输(k-ω)(SST)模拟。自由表面捕捉基于流体体积法。通过与公共领域的拖曳试验数据进行比较,对计算结果进行了验证。为了预测数值解的不确定性,在三种不同的网格分辨率下,基于理查森外推法对单波情况进行了系统的网格收敛研究。特别关注了螺旋桨平面内的自由面和尾流。目的是对模型和全尺寸试验的数值结果进行比较,以检查尺度对船舶在规则波浪中性能的影响。模型和全尺寸的比较显示出明显的差异,自由表面拓扑结构的差异较小,但在螺旋桨附近边界层的形成方面可以清楚地观察到差异。
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