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Study on the course stability of very large vessels in shallow water using CFD

机译:用CFD研究超大型船舶在浅水中的航向稳定性

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摘要

When the large vessels, such as very large container ships and conventional VLCCs, are navigated in shallow water, it is necessary to accurately estimate the course stability as well as the squat of the ship to ensure safety. The purpose of this study is to analyze the course stability characteristics by vessel type, which can evaluate the navigation safety of very large vessels navigating at low speed in shallow water. Numerical simulations were carried out using CFD for KVLCC2 and DTC with respect to depth of water, drift angle, and angular velocity. The maneuvering performance in shallow water were analyzed by estimating the hydrodynamic derivative from the results of the numerical calculations. As the drift angle and angular velocity increased, the magnitudes of sway force and yaw moment became larger. The hydrodynamic derivatives at H/T = 1.2 were very large compared with that at other depths. The course stability at H/T = 1.2 was significant regardless of the type of vessel, and found to be more significant in KVLCC2 compared to DTC. The nonlinear effects such as vortex flow and pressure distribution on the hull were also analyzed through a flow field analysis around the hull.
机译:当大型船只(例如超大型集装箱船和常规VLCC)在浅水中航行时,有必要准确估算航线的稳固性以及船舶的下蹲幅度,以确保安全。这项研究的目的是按船只类型分析航向稳定性特征,从而可以评估在浅水中低速航行的大型船只的航行安全性。使用CFD对KVLCC2和DTC进行了水深,漂移角和角速度方面的数值模拟。通过数值计算结果估算流体动力导数,分析了浅水机动性能。随着漂移角和角速度的增加,摇摆力和偏航力矩的大小变大。与其他深度相比,H / T = 1.2时的流体动力学导数非常大。无论船只的类型如何,H / T = 1.2时的航向稳定性都很重要,并且与DTC相比,在KVLCC2中更显着。还通过围绕船体的流场分析来分析诸如涡流和压力分布对船体的非线性影响。

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