Simulation of turbulent effective wakes for propellers in off-design conditions by a correction factor approach.

IF 2.7 4区 工程技术 Q2 ENGINEERING, CIVIL
Journal of Marine Science and Technology Pub Date : 2021-01-01 Epub Date: 2021-01-19 DOI:10.1007/s00773-020-00794-7
Antonio Sánchez-Caja, Jussi Martio, Ville M Viitanen, Timo Siikonen
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引用次数: 0

Abstract

This paper presents a procedure for the estimation of propeller effective wakes in oblique flows. It shows how a recently developed method for controlling coupling errors can be applied to analyze propellers operating in off-design conditions. The approach allows the use of fast potential flow methods for the representation of the propeller in the context of viscous flow solvers and works accurately for a wide range of advance numbers and incidence angles with a minimum computational cost. The new method makes it possible to disclose flow phenomena on the effective wake that were hidden in conventional approaches of effective wake simulation. Different application cases are analyzed, such as a propeller-shaft configuration in inclined flow, a pod propulsor in an oblique inflow, and a ship hull advancing at a yaw angle. A dipole-like distortion on the effective wake is unmasked for a uniform flow incident to a propeller mounted on an inclined shaft. The flow component perpendicular to the axis is found to be responsible for the distortion. The effect of the direction of propeller rotation on the effective wake is illustrated for a single-shaft ship moving at a yaw angle. In particular, keel vortices are either attracted to or repelled from the propeller disk depending on the sign of the yaw angle or alternatively on that of the propeller rotation.

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用修正系数法模拟非设计条件下螺旋桨的湍流有效晃动。
本文介绍了一种估算斜流中螺旋桨有效翼面的程序。它展示了如何将最近开发的耦合误差控制方法应用于分析在非设计条件下运行的螺旋桨。该方法允许在粘性流求解器中使用快速势流方法来表示螺旋桨,并能以最低的计算成本精确地适用于各种推进数和入射角。新方法可以揭示有效尾流上的流动现象,而这些现象在传统的有效尾流模拟方法中被掩盖了。分析了不同的应用案例,如倾斜流中的螺旋桨-轴配置、斜入流中的吊舱推进器以及以偏航角前进的船体。对于安装在倾斜轴上的螺旋桨,入射的均匀流揭示了有效尾流的偶极畸变。研究发现,垂直于轴线的流动分量是造成畸变的原因。对于以偏航角运动的单轴船舶,说明了螺旋桨旋转方向对有效尾流的影响。特别是,龙骨旋涡被螺旋桨盘吸引或排斥,取决于偏航角的符号或螺旋桨旋转的符号。
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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来源期刊
Journal of Marine Science and Technology
Journal of Marine Science and Technology 工程技术-工程:海洋
CiteScore
5.60
自引率
3.80%
发文量
47
审稿时长
7.5 months
期刊介绍: The Journal of Marine Science and Technology (JMST), presently indexed in EI and SCI Expanded, publishes original, high-quality, peer-reviewed research papers on marine studies including engineering, pure and applied science, and technology. The full text of the published papers is also made accessible at the JMST website to allow a rapid circulation.
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