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Time domain simulation of side-by-side floating bodies using a 3D numerical wave tank approach

机译:使用3D数值波箱方法对并排浮体进行时域仿真

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The coupled system of two side-by-side fixed and/or floating bodies interacting with a large amplitude nonlinear wave is studied using a direct time domain solution method. The numerical model is based on a three-dimensional mixed Eulerian-Lagrangian (MEL) method under certain simplifying approximations permitting Rankine panel scheme to be implemented over a time-invariant boundary surface to solve the boundary value problem for the unknown velocity potentials. A 4th order Adams-Bashforth-Moulton scheme is used for time marching of rigid-body motion histories of the individual bodies and evolution of the free-surface including the gap region in which large resonant fluid motions occur. A systematic study has been carried out to evaluate the performance of the developed time domain method in simulating the forces and motions as well as the fluid motion in the gap region for the two body system under various arrangements and in different wave-headings. At first, the computed numerical results have been validated and verified with computational and experimental results available in literature for standard geometries such as vertical truncated cylinders and rectangular boxes. Secondly, effectiveness of the damping lid model which is introduced to suppress wave resonance in the gap region is investigated including its influence on maximum sway forces on fixed and floating rectangular barges in side-by side configurations. Thirdly, comparative studies on absolute and relative motion response for two cases (two rectangular barges, and a FLNG-FPSO + shuttle tanker) in side-by-side arrangement are detailed to bring out the importance of nonlinearities arising due to steep nonlinear incident waves. Finally, coupled motions of the two-body system of an FPSO and a shuttle tanker floating in side-by-side configuration in a steep nonlinear wave field are studied in which the two bodies are connected through hawsers, and also the FPSO is moored to the ground. Additionally there is a fender between the two bodies. (C) 2016 Elsevier Ltd. All rights reserved.
机译:使用直接时域求解方法研究了两个并排的固定和/或浮体与大振幅非线性波相互作用的耦合系统。数值模型基于三维混合欧拉-拉格朗日(MEL)方法,在一定的简化近似下,允许在时不变边界面上实施兰金面板方案,以解决未知速度势下的边值问题。四阶Adams-Bashforth-Moulton方案用于各个物体的刚体运动历史的时间行进和自由表面的演变,包括发生大的共振流体运动的间隙区域。已经进行了系统的研究,以评估所开发的时域方法在不同布置和不同波向下模拟两个身体系统的间隙区域中的力和运动以及流体运动的性能。首先,对计算的数值结果进行了验证和验证,并获得了文献中针对标准几何形状(例如垂直截断的圆柱体和矩形框)的计算结果和实验结果。其次,研究了引入阻尼盖模型以抑制间隙区域中的波共振的有效性,包括其对并排配置中的固定和漂浮矩形驳船的最大摇摆力的影响。第三,详细研究了两个并排布置的情况(两个矩形驳船和一个FLNG-FPSO +穿梭油轮)的绝对运动和相对运动响应,以揭示由陡峭的非线性入射波引起的非线性的重要性。最后,研究了FPSO的两体系统与在陡峭的非线性波场中并排漂浮的穿梭油轮的耦合运动,其中两个主体通过缆索连接,并且FPSO系泊于地面。此外,两个车身之间有一个护舷。 (C)2016 Elsevier Ltd.保留所有权利。

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