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A Boundary Element Method for the Strongly Nonlinear Analysis of Ventilating Water-entry and Wave-body Interaction Problems.

机译:通风水进入与波体相互作用问题的强非线性分析的边界元方法。

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摘要

A two-dimensional Boundary Element Method (BEM) is developed to study the strongly nonlinear interaction between a surface-piercing body and the free-surface. The scheme is applied to problems with and without the possibility of ventilation resulting from the motion and geometric configuration of the surface-piercing body. The main emphasis of this research work is on the development of numerical methods to improve the performance prediction of surface-piercing propellers by including the whole range of free-surface nonlinearities. The scheme is applied to predict the ventilated cavity shapes resulting from the vertical and rotational motion of a blade-section with fully nonlinear free-surface boundary conditions. The current method is able to predict the ventilated cavity shapes for a wide range of angles of attack and Froude numbers, and is in good agreement with existing experimental results. Through a comparison with a linearized free-surface method, the current method highlights the shortcomings of the negative image approach used commonly in two-dimensional and three-dimensional numerical methods for surface-piercing hydrofoils or propellers. The current method with all its capabilities makes it a unique contribution to improving numerical tools for the performance prediction of surface-piercing propellers. The scheme is also applied to predict the roll and heave dynamics of two-dimensional Floating Production Storage and Offloading (FPSO) vessel hull sections within a potential flow framework. The development of the potential flow model is aimed at validating the free-surface dynamics of an independently developed Navier Stokes Solver for predicting the roll characteristics of two-dimensional hull sections with bilge keels.
机译:开发了一种二维边界元方法(BEM),以研究表面穿孔体与自由表面之间的强非线性相互作用。该方案适用于因穿刺体的运动和几何形状而导致通风的问题。这项研究工作的主要重点是开发数值方法,以通过包括整个自由表面非线性范围来改善表面穿孔螺旋桨的性能预测。该方案可用于预测叶片截面的垂直和旋转运动在完全非线性的自由表面边界条件下产生的通风腔形状。当前的方法能够在大范围的迎角和弗洛德数下预测通风腔的形状,并且与现有的实验结果非常吻合。通过与线性自由表面方法进行比较,当前方法凸显了用于冲孔水翼或螺旋桨的二维和三维数值方法中通常使用的负像方法的缺点。当前的方法具有所有功能,因此为改进用于数值模拟表面穿孔螺旋桨性能的数值工具做出了独特的贡献。该方案还适用于预测潜在流动框架内的二维浮式生产储油和卸油(FPSO)船体截面的侧倾和升沉动力学。潜在流动模型的开发旨在验证独立开发的Navier Stokes解算器的自由表面动力学,以预测带有船底龙骨的二维船体截面的侧倾特性。

著录项

  • 作者

    Vinayan, Vimal.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 236 p.
  • 总页数 236
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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