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Hydroeiastic Assessment of Different High-Speed-Vessei Stiffened Panel Designs

机译:不同高速血管加强面板设计的氢丙罗基评估

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摘要

In this paper, the hydroelastic response of the bottom panel on high-speed craft during slamming events is investigated with a numerical fluid-structure-interaction (FSI) method. The FSI method tightly couples computational-fluid dynamics for the fluid solution and finite-element analysis for the structural response. The volume-of-fluid approach is use to capture the air-water interface and the time dependent wetness of the body elevating the water. The structure discretization is performed by a linear-dynamic finite-element method with modal decomposition. The tightly-coupled interaction between the structure and fluid domains allows for an accurate prediction of structural response during slamming.The methodology is used to investigate the design of two bottom hull stiffened panel arrangements equivalent from the perspective that each meets the requirement of minimum section modulus, shear area, and plate thickness. Numerical fluid and structural mesh selection are performed separately based on the quantities of displacement, structure modal energy, and force. Rigid panel slamming simulations are used for mesh quality assessment, and two-way coupled simulations provide the global hydroelastic panel response. It is found that the design with a thinner plate and a larger number of small stiffeners exhibits smaller displacement, strain, and stress during the same impact event compared to the design with a thicker plate and a fewer number of larger stiffeners. Hydroelastic effects are found to be significant for lower panel deadrise angle which increases displacement, strain, and stress for both designs.
机译:本文采用数值流体 - 结构 - 相互作用(FSI)方法研究了在撞击事件期间高速工艺底板的液体响应。 FSI方法紧密地耦合用于流体溶液的计算流体动力学和结构响应的有限元分析。流体体积的方法用于捕获空气 - 水界面和身体升高水的时间依赖性湿度。结构离散化由具有模态分解的线性动态有限元方法进行。结构和流体畴之间的紧密耦合相互作用允许精确地预测在砰击期间的结构响应。方法用于研究与每个局部模量的要求相当的两个底壳加强面板布置的设计,剪切区域和板厚。基于位移,结构模态能量和力的量分别进行数值流体和结构网格选择。刚性面板扰乱模拟用于网格质量评估,双向耦合模拟提供全局水力弹性面板响应。结果发现,与具有较厚板的设计相比,具有较薄板和更大数量的小型加强筋的设计表现出较小的位移,应变和在相同的冲击事件中的应力。对于较低的面板消逝角度,发现液体弹性效应是显着的,这增加了两种设计的位移,应变和应力。

著录项

  • 来源
    《Naval engineers journal》 |2018年第3期|107-116|共10页
  • 作者

    Mesa Jose D.; Maki Kevin J.;

  • 作者单位

    Univ Michigan Dept Naval Architecture & Marine Engn Ann Arbor MI 48109 USA;

    Univ Michigan Dept Naval Architecture & Marine Engn Ann Arbor MI 48109 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 21:45:30

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