A Study on The Performance Improvement of Hi-Fin

Sooyeong Park, Sunghoon Kim, Jeong-yong Park, Hyoungsuk Lee
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Abstract

Efforts to improve propulsion efficiency of a ship in maritime industry are ongoing, researchers are trying to develop a new type of Energy-Saving Devices for better performance. This study deals with fuel saving device called Hyundai Propeller Boss Cap Fin (Hi-Fin®) attached at the hub of the propeller and aimed to investigate the new type of Hi-Fin® to improve propulsion efficiency. Moreover, in order to evaluate the performance of Hi-Fin® more accurately, model tests were conducted at the large cavitation tunnel as well as the towing tank. For this purpose, two kinds of Hi-Fin® with different geometry were designed using self-propulsion CFD analysis considering hull-propeller-rudder interaction. The first was conventional type of Hi-Fin® which has flat plate fin. The other was designed with NACA66 hydrofoil section. Propulsion tests were conducted at the towing tank in HMRI with two designed cases and power savings of Hi-Fin® were also measured at the large cavitation tunnel in KRISO. In the large cavitation tunnel tests, tunnel flow speed and rotational speed of propeller were adjusted in order to investigate the Reynolds number effect on the propulsion performance. The results showed that the Hi-Fin® designed with NACA66 hydrofoil section had better propulsion performance than the flat plate design. And power saving effect of Hi-Fin® is increased at a high Reynolds number in the large cavitation tunnel when compared with the results at relatively low Reynolds number form the towing tank.
高翅片性能改进研究
海运业一直在努力提高船舶的推进效率,研究人员正在努力开发一种新型的节能装置,以提高船舶的性能。本研究研究了安装在螺旋桨轮毂上的节油装置——现代螺旋桨Boss帽鳍(Hi-Fin®),旨在研究新型的Hi-Fin®以提高推进效率。此外,为了更准确地评估Hi-Fin®的性能,在大型空化隧道和拖曳槽进行了模型试验。为此,采用自推进CFD分析方法设计了两种不同几何形状的Hi-Fin®,并考虑了船体-螺旋桨-舵的相互作用。第一种是传统的Hi-Fin®,它有平板鳍,另一种是用NACA66水翼设计的。在HMRI的牵引箱中进行了两种设计案例的推进试验,并在KRISO的大型空化隧道中测量了Hi-Fin®的节能效果。在大空化隧道试验中,调整隧道流速和螺旋桨转速,研究雷诺数对推进性能的影响。结果表明,采用NACA66水翼截面设计的Hi-Fin具有较好的推进性能。在大空化隧洞内高雷诺数时,Hi-Fin的节能效果比在拖曳槽内低雷诺数时有所提高。
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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