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Numerical simulations of a ship obliquely advancing in calm water and in regular waves

机译:平静水和常规波倾斜地推进船舶的数值模拟

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Numerical simulations of the S-175 containership obliquely advancing at constant forward speed in calm water and in regular waves were conducted using a potential flow method. A double-body potential and trailing vortex sheets, which modeled the flow field around the ship obliquely advancing in calm water, yielded transverse forces and yaw moment due to the lift effect. Perturbation potentials describing the free surface flow yielded first-order wave-induced motions and second-order wave loads. Evaluating and then averaging the associated second-order wave loads obtained the steady wave drift forces and moments. Generally, numerical predictions compared favorably to experimental measurements. A systematic analysis demonstrated that, in short beam waves, the transverse wave drift force attained considerable amplitudes, and these amplitudes increased rapidly at larger drift angles. The transverse force due to wave drift effects in beam waves and due to the lift effects in calm water were nearly of equal magnitude. Therefore, when predicting wave drift loads acting on a maneuvering ship, the effect of drift angle should be accounted for.
机译:使用潜在的流动法进行倾斜地推进恒定前进速度的S-175容器的数值模拟。一种双体潜力和尾随涡流板,其在倾斜地推进平静的水中围绕船上的流场建模,由于提升效果而产生横向力和横摆力。描述自由表面流动的扰动电位产生了一阶波诱导的运动和二阶波载荷。评估然后平均相关联的二阶波负荷获得稳定波漂移力和时刻。通常,数值预测与实验测量有利相比。系统分析证明,在短梁波中,横波漂移力获得了相当大的幅度,并且这些幅度在较大的漂移角度迅速增加。由于梁波的波漂移效应引起的横向力以及由于平坦水中的提升效应几乎是相等的。因此,当预测作用在机动船上的波浪漂移负载时,应考虑漂移角的效果。

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