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Fluid-structure interaction simulation of slam-induced bending in large high-speed wave-piercing catamarans

机译:大型高速波刺穿双体载体血液结构的流体结构相互作用仿真

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A ship in waves may experience a water impact event known as a slam. In this paper, slam-induced bending of wave-piercing catamarans in head seas is predicted by way of fluid-structure interaction simulations. The flow field during slamming of a wave-piercing catamaran is highly non-linear and cannot be accurately captured using potential flow methods as a result of the interactions between the flow fields produced by water entry of the separate demihulls and centre bow. Thus, the Reynolds-Averaged Navier-Stokes (RANS) equations are solved for rigid body motion of a vessel at model-scale. Verification and validation is conducted using model-scale data from a Hydroelastic Segmented Model (HSM). One-way and two-way interactions are computed considering vibration of the hull girder. In the case of one-way interactions, the computed fluid loads affect the structure, but the structural response does not affect the fluid domain solution whereas for the two-way interactions the structural response affects the fluid solution. A new method for capturing the non-linear time variation in added mass is developed and deemed necessary when computing one-way interactions, primarily as a result of the large changes in forward wetted area present for a wave-piercing catamaran. It is shown that two-way interaction simulation is not needed for predicting the slam induced hull girder loads. One-way interaction simulation can therefore be used allowing reduced computational effort. (C) 2018 Elsevier Ltd. All rights reserved.
机译:波浪中的船可能会遇到被称为猛烈的水冲击事件。在本文中,通过流体结构相互作用模拟预测了头海洋中波形刺穿偏美筏的血液诱导的弯曲。在波刺刺码筏的撞击过程中的流场是高度非线性的,并且不能使用潜在的流动方法准确地捕获由于由单独的Demihulls和中心弓产生的流场产生的流场之间的相互作用。因此,雷诺平均的Navier-Stokes(RANS)方程被求解用于模型规模的血管的刚性体外运动。使用来自水力弹性分段模型(HSM)的模型级数据进行验证和验证。考虑到船体梁的振动来计算单向和双向交互。在单向相互作用的情况下,计算的流体负载影响结构,但结构响应不会影响流体域解决方案,而对于双向相互作用,结构响应会影响流体溶液。在计算单向相互作用时,开发并认为在计算单向相互作用时产生并认为是必要的捕获非线性时间变化的新方法,主要是由于用于波刺穿双体船的前向湿润区域的大变化。结果表明,不需要双向相互作用模拟来预测SLAM感应船体梁载荷。因此,可以使用单向交互仿真来允许减少计算工作。 (c)2018年elestvier有限公司保留所有权利。

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