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Nonlinear Computation of Water Impact of Axisymmetric Bodies

机译:轴对称体水冲击的非线性计算

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摘要

A fully nonlinear numerical simulation based on a boundary element method was used to investigate water impact of axisymmetric bodies that strike vertically the horizontal free surface from the air. The main objective was to understand the gravity effect on flow/wave kinematics and dynamics and to quantify the range of validity of existing theories and computations that are based on the infinite Froude number assumption. Two body geometries were considered: inverted cone and sphere. For the inverted cone, we obtained detailed dependencies of free-surface profile and impact pressure and load on the body on the generalized Froude number (F_r = (V/gt)~1/2, where V is the impact velocity, g is the gravitational acceleration, and t is time) and deadrise angle α. Based on these, we developed an approximate formula for evaluating the contribution of the gravity effect to the total impact force on the body in terms of a similarity parameter F_r/α~1/2. For the sphere, we developed and applied a pressure-based criterion to follow the evolution of flow separation on the body and to obtain an appropriate description of the free-surface profile near the body and accurate evaluation of the impact pressure and load on the body during the entire impact process. The numerical result of impact force on the body agreed well with existing experimental measurements. We confirmed that the gravity effect is unimportant in initial impact of the sphere. Significantly, we found that in a later stage of impact, flow separation remains at an almost fixed position at an angle θ≈ 62.5 deg to the bottom of the sphere for a wide range of Froude numbers, F_r = V/(gR)~1/2≥1, where R is the radius of the sphere.
机译:基于边界元方法的完全非线性数值模拟用于研究轴对称物体的水冲击,该物体垂直撞击空气中的水平自由表面。主要目的是了解重力对流/波运动学和动力学的影响,并量化基于无限弗洛德数假设的现有理论和计算的有效性范围。考虑了两个身体几何形状:倒圆锥形和球形。对于倒锥,我们获得了自由表面轮廓以及撞击压力和物体上的载荷对广义弗洛德数(F_r =(V / gt)〜1/2)的详细依赖性,其中V是撞击速度,g是重力加速度,t是时间)和空转角α。基于这些,我们开发了一个近似公式,用于根据相似性参数F_r /α〜1/2评估重力效应对人体总撞击力的贡献。对于球体,我们开发并应用了基于压力的准则,以跟踪物体上流分离的演变,并获得对物体附近自由表面轮廓的适当描述,并准确评估物体上的冲击压力和载荷在整个冲击过程中。冲击力对人体的数值结果与现有的实验测量结果非常吻合。我们确认重力效应在球体的初始撞击中并不重要。值得注意的是,我们发现,在较晚的撞击阶段,对于大范围的弗劳德数,F_r = V /(gR)〜1,在与球体底部成角度≈≈62.5度的情况下,流分离保持在几乎固定的位置。 /2≥1,其中R是球体的半径。

著录项

  • 来源
    《Journal of Ship Research》 |2011年第1期|p.29-44|共16页
  • 作者

    Hongmei Yan; Yuming Liu;

  • 作者单位

    Center for Ocean Engineering, Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, USA;

    Center for Ocean Engineering, Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, 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

    hydrodynamics (general); loads; slamming; waves;

    机译:流体力学(一般);负载;猛击波浪;

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