螺旋桨/舵与直接和耦合CFD/势流螺旋桨方法的相互作用,以及在Z字形操纵中的应用

IF 1.4 Q3 ENGINEERING, MARINE
A. Mofidi, J. E. Martin, P. Carrica
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引用次数: 24

摘要

本文研究了一种计算流体力学(CFD)/潜在螺旋桨代码耦合的船舶机动模拟方法。虽然这种方法在潜艇上是成功的,但在物体(舵)浸入尾流的情况下,这个概念还没有被评估过。该研究使用CFD代码REX和螺旋桨代码PUF-14应用于开放水域配置的螺旋桨/方向舵相互作用以及KCS集装箱船的15/1之字形机动。自推进结果以及机动过程中的运动、力、力矩和平均流场与实验和离散螺旋桨模拟结果吻合较好。该方法是一种有效且经济的水面舰艇机动直接仿真方法,可节省近一个数量级的CPU时间。大规模分离的方向舵流动可能表现不佳,因为在耦合方法中,到达方向舵的螺旋桨湍流被低估了。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Propeller/rudder interaction with direct and coupled CFD/potential flow propeller approaches, and application to a zigzag manoeuvre
ABSTRACT This paper investigates a coupled computational fluid dynamics (CFD)/potential propeller code approach to simulate maneuvers of ships. While this approach is successful in submarines, the concept has not been evaluated before for cases where an object (the rudder) is immersed in the wake. The study uses the CFD code REX and the propeller code PUF-14 applied to propeller/rudder interactions in open water configuration and to a 15/1 zigzag maneuver for the KCS container ship. Self-propulsion results, and motions, forces, moments and mean flow field during the maneuver agree well with experiments and discretized propeller simulations. The approach is an effective and economical way to perform direct simulation of surface ship maneuvers, providing CPU time savings approaching an order of magnitude. Massively separated rudder flows may not perform as well, since the propeller turbulence reaching the rudder is under-predicted in the coupled approach.
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来源期刊
Ship Technology Research
Ship Technology Research ENGINEERING, MARINE-
CiteScore
4.90
自引率
4.50%
发文量
10
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