Motion of a Floating Structure in Water of Uniform Depth

Jin S. Chung
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引用次数: 9

Abstract

A potential flow theory is used to develop a method and an associated computer program that computes the hydrodynamic forces and six degrees-of-freedom motion for floating structures of general configuration at arbitrary heading in waves in water of uniform depth. The hydrodynamic force equation derived become identical, under certain assumptions, to the equations commonly used by the offshore industry, and the two approaches are compared in detail. The computed motions for all six degrees of freedom agree well with model-scale and full-scale experimental data for two typical semisubmersible drilling rigs in finite-depth water. Also, the present motion computations are more accurate than a prior work using the second approach; they use experimentally validated or determined values of hydrodynamic coefficients with the effect of the free surface and water depth included. The present method generates sufficient computation accuracy to use for practical design applications.
等深水中浮动结构的运动
利用势流理论,开发了一种计算一般构型漂浮结构在均匀水深波浪中任意航向的水动力和六自由度运动的方法和相应的计算机程序。在一定的假设条件下,推导出的水动力方程与海上工业常用的水动力方程一致,并对两种方法进行了详细的比较。计算得到的六个自由度的运动与两个典型半潜式钻井平台在有限水深条件下的模型和全尺寸实验数据吻合较好。此外,目前的运动计算比使用第二种方法的先前工作更准确;他们使用经实验验证或确定的水动力系数值,其中包括自由水面和水深的影响。该方法具有足够的计算精度,可用于实际设计应用。
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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