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Evaluation of flexible hull types for very large floating structures.

机译:对非常大的浮动结构的柔性船体类型的评估。

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摘要

In this study, Very Large Floating Structures (VLFS) of different hull forms (semi-submersible and mat-like) are evaluated on the basis of their hull motions and structural responses. Some suggestions and recommendations are provided for selecting a configuration. The theory of linear hydroelasticity is applied to the analysis. The success of such an analysis of VLFS by means of available computers rests on the development of three efficient hydroelastic analysis methods that significantly reduce the CPU time and the required computational storage.;The first method employs the modified Morison's equation and linear structural dynamic theory. The hydrodynamic coefficients in the modified Morison's equation, are obtained using the extended MacCamy & Fuchs' method for the columns and the strip theory for the pontoons, respectively. The method predicts better results at higher wave frequencies than does the Morison's equation method.;In the second method, the simplified zero-draft Green function is employed in the hydrodynamic analysis and in the structural analysis a mat-like floating body is modeled as an equivalent coating plate. These two efforts result in significant CPU savings.;The mathematical model of the last method employs a three-dimensional hydroelasticity theory. Two techniques are introduced to increase the computational efficiency of this method. One is related to the convergency of the Green function and the other involves the use of an iterative sparse solver for the linear system of equations. This method is especially efficient for the analysis of a VLFS in terms of CPU and storage. Hence, it has been possible to analyze the hydroelastic response of a VLFS with the available computer resources.
机译:在这项研究中,基于船体运动和结构响应,对不同船体形式(半潜式和垫状)的超大型漂浮结构(VLFS)进行了评估。提供了一些选择配置的建议。线性水弹性理论被应用到分析中。通过可用的计算机对VLFS进行此类分析的成功取决于三种有效的水弹性分析方法的开发,这些方法显着减少了CPU时间和所需的计算存储量。第一种方法采用了改进的Morison方程和线性结构动力学理论。修改后的莫里森方程中的流体力学系数分别使用扩展的MacCamy&Fuchs方法(用于圆柱)和条理论(用于浮桥)获得。与Morison方程法相比,该方法在更高的波频率下可预测更好的结果。;第二种方法是在流体力学分析中使用简化的零吃水格林函数,在结构分析中将垫状浮体建模为等效涂层板。这两项工作可节省大量CPU 。;后一种方法的数学模型采用了三维水弹性理论。引入了两种技术来提高此方法的计算效率。一种与格林函数的收敛性有关,另一种与线性方程组的迭代稀疏求解器有关。此方法对于从CPU和存储方面分析VLFS特别有效。因此,有可能利用可用的计算机资源来分析VLFS的水弹性响应。

著录项

  • 作者

    Wang, Suqin.;

  • 作者单位

    University of Hawai'i at Manoa.;

  • 授予单位 University of Hawai'i at Manoa.;
  • 学科 Ocean engineering.;Civil engineering.;Mechanics.
  • 学位 Ph.D.
  • 年度 1995
  • 页码 193 p.
  • 总页数 193
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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