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Validation of a lifting surface method for modelling rudder-propeller interaction

机译:验证用于建模舵 - 螺旋桨相互作用的升力面方法

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摘要

The validation of a method for modelling the interaction between a rudder and propeller is the subject of this chapter. A brief description is given of the process of successful validation of a CFD algorithm. The parallel algorithms of the PALISUPAN code are the basis of the lifting surface analysis carried out. Experimental results obtained from the wind tunnel test programme are used to validate firstly a lifting-surface model of a free-stream all-movable rudder (Rudder No. 2), secondly to model the open-water performance of the four-bladed propeller (modified Wageningen B4.40), and finally a representative rudder-propeller geometry. The representative geometry chosen was the mid-longitudinal separation of Rudder No. 2 (X/D=0.39) and propeller, with no lateral separation (Y/D=0.0), and the maximum height of the propeller tip coincident with the rudder tip Z/D=0.75.The development of the interaction velocity field method is described. An aim of the validation exercise was to discover the minimum number of panels necessary to obtain reliable rudder and propeller force characteristics. Also, the minimum number of panels to adequately define the interaction velocity field was found. The minimisation of computational effort allowed the parametric studies, described in the following report, to be carried out within a reasonable time-scale.
机译:本章的主题是验证对舵与螺旋桨之间的相互作用进行建模的方法。简要介绍了CFD算法的成功验证过程。 PALISUPAN代码的并行算法是进行提升面分析的基础。从风洞测试程序获得的实验结果首先用于验证自由流全移动式舵(Rudder No. 2)的升力面模型,其次用于对四叶螺旋桨的开水性能进行建模(修改后的Wageningen B4.40),最后是具有代表性的舵桨几何形状。选择的代表性几何形状是2号舵(X / D = 0.39)和螺旋桨的中纵间距,没有横向间距(Y / D = 0.0),并且螺旋桨尖端的最大高度与舵尖端重合Z / D = 0.75。描述了相互作用速度场方法的发展。验证活动的目的是发现获得可靠的方向舵和螺旋桨力特性所需的最少面板数。此外,找到了足以定义相互作用速度场的最小面板数。计算工作量的最小化使以下报告中描述的参数研究可以在合理的时间范围内进行。

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    Turnock S.R.;

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  • 年度 1992
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  • 原文格式 PDF
  • 正文语种 en
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