Development of a Marine Propeller With Nonplanar Lifting Surfaces

Q4 Engineering
P. Andersen, J. Friesch, J. J. kappel, L. Lundegaard, G. Patience
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引用次数: 42

Abstract

The principle of nonplanar lifting surfaces is applied to the design of modern aircraft wings to obtain better lift to drag ratios. Whereas a pronounced fin or winglet at the wingtip has been developed for aircraft, the application of the nonplanar principle to marine propellers, dealt with in this paper, has led to the KAPPEL propeller with blades curved toward the suction side integrating the fin or winglet into the propeller blade. The combined theoretical, experimental, and practical approach to develop and design marine propellers with nonplanar lifting surfaces has resulted in propellers with higher efficiency and lower levels of noise and vibration excitation compared to conventional state-of-the-art propellers designed for the same task. Conventional and KAPPEL propellers have been compared for a medium-sized containership and a product tanker. In total, nine KAPPEL propellers and two conventional propellers have been designed, and models of all propellers have been examined with respect to cavitation and efficiency in the open-water and behind conditions. Casting procedures, measurement procedures, and stress analysis methods for the unconventional geometry of the KAPPEL propeller have been developed. Furthermore, the KAPPEL propeller has been applied in full scale to the product carrier investigated. Sea trials with the conventional propeller and the KAPPEL propeller have been performed and have proved an efficiency gain of 4% in favor of the new propeller. The improved efficiency was obtained at lower propeller-induced pressure fluctuations. The correlation between the theoretical, experimental, and full-scale results is discussed.
非平面升力面船用螺旋桨的研制
非平面升力面原理被应用到现代飞机机翼的设计中,以获得更好的升力阻力比。在飞机上已经发展出明显的翼尖或翼尖小翼,而本文研究的非平面原理在船用螺旋桨上的应用,导致了叶片向吸力侧弯曲的KAPPEL螺旋桨,将翼尖或翼尖集成到螺旋桨叶片中。结合理论、实验和实践的方法来开发和设计具有非平面升力面的船用螺旋桨,与设计用于相同任务的传统最先进的螺旋桨相比,螺旋桨具有更高的效率和更低的噪音和振动激励水平。中型集装箱船和成品油船的常规和KAPPEL螺旋桨进行了比较。总共设计了9个KAPPEL螺旋桨和2个常规螺旋桨,并对所有螺旋桨的模型在开放水域和水下条件下的空化和效率进行了测试。已经开发了KAPPEL螺旋桨非常规几何形状的铸造程序、测量程序和应力分析方法。此外,KAPPEL螺旋桨已在所研究的产品运输船上进行了全尺寸应用。传统螺旋桨和KAPPEL螺旋桨的海上试验已经进行,并证明新螺旋桨的效率提高了4%。在较低的螺旋桨引起的压力波动下获得了更高的效率。讨论了理论、实验和全尺寸结果之间的关系。
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
Marine Technology and Sname News
Marine Technology and Sname News Engineering-Ocean Engineering
CiteScore
0.60
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: The Marine Technology Society Journal is the flagship publication of the Marine Technology Society. It publishes the highest caliber, peer-reviewed papers, six times a year, on subjects of interest to the society: marine technology, ocean science, marine policy, and education.
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