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Nonlinear impact loading in an oblique seaway

机译:非线性冲击载荷在倾斜的海滨

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There is an increasing interest in developing direct calculation methods and procedures for determining extreme wave loads on ship girders (e.g. ISSC, 2000 [1]). Ships experiencing bottom and bow flare slamming have heightened the need for computational tools suitable to accurately predict motion and structural responses. The associated nonlinear impact problem is complicated by the complex free surface and body boundary conditions. This paper examines a "blended" linear - nonlinear method by which extreme loads due to bottom impact and flare slamming can be determined. Using a high-speed container ship as an example, comparisons of motions, shear and bending moments, and pressures are made in head and oblique bow-quartering waves. The time domain computer program used in the comparison is based upon partially nonlinear models. The program, NSHIPMO, is an blended strip theory method using "impact" stations over the forward part of the ship and partially nonlinear stations over the rest. Body exact hydrostatics and Froude-Krylov excitation are used over the entire hull. The impact theory of Troesch and Kang [2] is employed to estimate the sectional nonlinear impact forces acting upon the specified nonlinear sections while the linear theory of Salvesen, et al. (STF) [3] is used to blend the remainder of the hydrodynamic forces, that is the radiation and diffraction components. Results from the simulation are presented with discussions of accuracy and time of computation. Several issues associated with the blended nonlinear time domain simulation are presented, including modeling issues related to directional yaw-sway control and a vertical plane dynamic instability in long waves that has not previously been recognized.
机译:在开发用于确定船长上的极端波浪载量的直接计算方法和程序时,存在越来越令人兴趣(例如,ISSC,2000 [1])。船舶经历底部和弓爆炸砰的砰砰声已经提高了适合准确预测运动和结构反应的计算工具的需求。相关的非线性影响问题由复杂的自由表面和身体边界条件复杂化。本文介绍了“混纺”线性 - 非线性方法,通过底部冲击而导致的极端载荷和闪光砰砰声。用高速集装箱船用作为示例,动作,剪切和弯矩的比较,以及压力在头部和斜弓四圈波中。比较中使用的时域计算机程序基于部分非线性模型。该计划Nshipmo是一种混合的条带理论方法,使用船舶前部的“冲击”站和余下的部分非线性站。身体精确的静水和Froude-Krylov激发在整个船体上使用。三角蹄和康[2]的影响理论用于估计作用于指定非线性部分的截面非线性抗冲击力,而SALVESEN等人的线性理论。 (STF)[3]用于混合剩余的流体动力,即辐射和衍射组分。仿真结果讨论了对准确性和计算时间的讨论。提出了与混合非线性时域模拟相关的几个问题,包括与先前未被识别的长波相关的与定向偏航控制相关的建模问题。

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