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Fast computation of the transient motions of moving vessels in irregular ocean waves

机译:不规则海浪中移动船舶瞬态运动的快速计算

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A fast time-domain method is developed in this paper for the real-time prediction of the six degree of freedom motions of a vessel traveling in an irregular seaway in infinitely deep water. The fully coupled unsteady ship motion problem is solved by time-stepping the linearized boundary conditions on both the free surface and body surface. A velocity-based boundary integral method is then used to solve the Laplace equation at every time step for the fluid kinematics, while a scalar integral equation is solved for the total fluid pressure. The boundary integral equations are applied to both the physical fluid domain outside the body and a fictitious fluid region inside the body, enabling use of the fast Fourier transform method to evaluate the free surface integrals. The computational efficiency of the scheme is further improved through use of the method of images to eliminate source singularities on the free surface while retaining vortex/dipole singularities that decay more rapidly in space. The resulting numerical algorithm runs 2-3 times faster than real time on a standard desktop computer. Numerical predictions are compared to prior published results for the transient motions of a hemisphere and laboratory measurements of the motions of a free running vessel in oblique waves with good agreement. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文开发了一种快速的时间域方法,用于在无限深水中在不规则的海路中行进的血管六个自由运动的实时预测。通过时间步进自由表面和主体表面上的线性化边界条件来解决完全耦合的不稳定船舶运动问题。然后,使用基于速度的边界积分方法来解决流体运动学的每次步骤时的拉普拉斯方程,而标量整体方程被解决用于总流体压力。边界积分方程被施加到身体外部的物理流体域和主体内的虚拟流体区域,从而能够使用快速傅里叶变换方法来评估自由表面积分。通过使用图像的方法来消除自由表面上的源奇点,同时保留在空间中更快地衰减的涡流/偶极奇异性的同时,进一步提高了该方案的计算效率。结果数值算法在标准台式计算机上的实时运行2-3倍。将数值预测与先前公布的结果进行了比较,对于半球的瞬态运动和实验室测量的瞬态运动,并在倾斜的船舶中具有良好的一致性的自由运行船的运动。 (c)2017 Elsevier Ltd.保留所有权利。

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