A 3-D SPH model for simulating water flooding of a damaged floating structure

IF 3.4 3区 工程技术 Q1 MECHANICS 水动力学研究与进展:英文版 Pub Date : 2017-10-01 DOI:10.1016/S1001-6058(16)60795-3
Kai Guo (郭凯) , Peng-nan Sun (孙鹏楠) , Xue-yan Cao (曹雪雁) , Xiao Huang (黄潇)
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引用次数: 22

Abstract

With the quasi-static analysis method, the terminal floating state of a damaged ship is usually evaluated for the risk assessment. But this is not enough since the ship has the possibility to lose its stability during the transient flooding process. Therefore, an enhanced smoothed particle hydrodynamics (SPH) model is applied in this paper to investigate the response of a simplified cabin model under the condition of the transient water flooding. The enhanced SPH model is presented firstly including the governing equations, the diffusive terms, the boundary implementations and then an algorithm regarding the coupling motions of six degrees of freedom (6-DOF) between the structure and the fluid is described. In the numerical results, a non-damaged cabin floating under the rest condition is simulated. It is shown that a stable floating state can be reached and maintained by using the present SPH scheme. After that, three-dimensional (3-D) test cases of the damaged cabin with a hole at different locations are simulated. A series of model tests are also carried out for the validation. Fairly good agreements are achieved between the numerical results and the experimental data. Relevant conclusions are drawn with respect to the mechanism of the responses of the damaged cabin model under water flooding conditions.

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一种用于模拟受损浮式结构水淹的三维SPH模型
一般采用准静力分析方法对受损船舶的末端漂浮状态进行风险评估。但这是不够的,因为船舶有可能在瞬态泛洪过程中失去稳定性。因此,本文采用一种增强的光滑颗粒流体力学(SPH)模型来研究简化舱室模型在瞬态水驱条件下的响应。首先给出了改进的SPH模型,包括控制方程、扩散项和边界实现,然后给出了结构与流体六自由度耦合运动的求解算法。在数值结果中,模拟了静止状态下未损坏的浮舱。结果表明,采用SPH方案可以达到并保持稳定的浮态。在此基础上,对不同位置有孔的受损舱室进行了三维试验模拟。并进行了一系列的模型试验验证。数值计算结果与实验数据吻合较好。针对水淹条件下受损舱室模型的响应机理,得出了相关结论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
5.90
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发文量
1240
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