On the Nonlinear Calculation of the Steady Bow Wave of a Ship

F. Noblesse
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Abstract

A nonlinear local analysis of the steady potential flow at a ship bow and stern, and more generally at any point along a ship waterline, is presented. The hull boundary condition and the nonlinear kinematic and dynamic free-surface boundary conditions are satisfied exactly, at the actual position of the free surface, in this analysis. The bow-flow analysis shows that the free surface at a ship bow is tangent to the stem.This theoretical result appears to agree with existing experimental measurements of the steady bow waves of the Wigley hull and the Series 60 CB=0.60 model. Furthermore, simple analytical expressions defining the fluid velocity at the bow and the stern, and at any other point along the ship waterline, in terms of the elevation of the free surface at the corresponding point are also obtained. These analytical expressions and the available experimental measurements of the wave profiles along the Wigley hull show that the velocity of the flow disturbance due to this hull is fairly small compared to the hull speed everywhere along the waterline except in very small regions around the bow and the stern, where the total fluid velocity is nearly equal to the hull speed in magnitude but directed vertically. Nonlinearities therefore appear to be quite important, although only in extremely small regions surrounding a ship bow and stern. A successful nonlinear method of calculation must then be able to represent the very rapid variation in the direction of the fluid velocity occurring within small regions around a ship bow and stern. In particular, a sufficiently fine discretization is required in these regions.
船舶船首定常波的非线性计算
本文对船舶船首和船尾的定常势流,以及船舶水线上任意点的定常势流进行了非线性局部分析。在分析中,船体边界条件和非线性运动、动力自由面边界条件在自由面实际位置完全满足。船首流分析表明,船首自由面与船首相切。这一理论结果似乎与威格利号船首稳定波的现有实验测量结果和60系列CB=0.60模型相一致。此外,还得到了以对应点的自由面高程为单位的船首、船尾和船舶水线上任何其他点的流体速度的简单解析表达式。这些解析表达式和现有的沿威格利船体波浪剖面的实验测量表明,除了船首和船尾周围非常小的区域外,由于这种船体引起的流动扰动的速度与船体速度相比,在水线上的任何地方都是相当小的,在那里,总流体速度在大小上几乎等于船体速度,但方向是垂直的。因此,非线性似乎是相当重要的,尽管只在船头和船尾周围的极小区域。因此,一个成功的非线性计算方法必须能够表示在船首和船尾周围的小区域内发生的流体速度方向的非常迅速的变化。特别地,在这些区域需要足够精细的离散化。
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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