Effect of stern appendages configurations on the course-keeping of ships in stern-quartering seas

IF 0.6 Q4 ENGINEERING, MARINE
C. Lena, M. Bonci, F. Walree
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引用次数: 3

Abstract

Ships can experience serious difficulties in keeping a straight course when sailing in stern-quartering seas. Design modifications like the addition of stern passive fins, or the modification of active control surfaces, are common solutions to improve the ship course-keeping. However, the success of such design modifications depends on the delicate balance between the excitation forces induced by the waves on the appended hull, the stabilization forces provided by the lifting surfaces as appended fins, and the steering forces provided by the control surfaces. This research investigates which of these aspects of a ship design play a concrete role in improving the ship course-keeping in waves. The study is carried out with the intention of looking at the different behaviors of the ship originating from different stern appendages configurations. Three modifications of stern appendages on three different ship hulls were investigated in various mild-to-rough sea conditions. The behavior of the vessels were simulated using a time domain, boundary element potential method, with the addition of semi-empirical formulations for the modelling of the stern lifting surfaces. The simulations were carried out in long crested irregular waves at three different direction, using the JONSWAP spectrum. The results showed that although larger stern appendages improve the directional stability of relatively large and slow vessels, in most cases they worsen their course-keeping ability, increasing the yaw motions. For smaller and faster vessels instead, passive and active fins tend to improve the course-keeping, because at high speed the lift provided by the appendages stabilizes the vessel. This effect is compensated by the wave excitation force at lower speed. Similarly to yaw, the roll motions increases with larger stern appendages.
船尾附属物构型对船尾停泊海域船舶航向保持的影响
船舶在船尾四分之一海域航行时,在保持平直航向方面可能会遇到严重困难。设计修改,如增加船尾被动鳍,或修改主动控制面,是改善船舶航向保持的常见解决方案。然而,这种设计修改的成功取决于波浪在附加船体上引起的激振力、作为附加翼片的升力面提供的稳定力和控制面提供的转向力之间的微妙平衡。本研究调查了船舶设计中的哪些方面在改善船舶在波浪中的航向保持方面发挥了具体作用。进行这项研究的目的是观察不同船尾附件配置引起的船舶的不同行为。研究了三种不同船体尾部附件在不同温和到恶劣海况下的三种改装。使用时域边界元势法模拟了船只的行为,并添加了用于船尾升力面的半经验公式。利用JONSWAP谱在三个不同方向的长波峰不规则波中进行了模拟。结果表明,尽管较大的船尾附件提高了相对较大和较慢船只的方向稳定性,但在大多数情况下,它们会恶化其航向保持能力,增加偏航运动。相反,对于更小更快的船只,被动和主动鳍往往会改善航向保持,因为在高速时,附件提供的升力会稳定船只。这种效应由较低速度下的波浪激振力来补偿。与偏航类似,横摇运动随着更大的船尾附件而增加。
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
CiteScore
2.60
自引率
0.00%
发文量
8
期刊介绍: The journal International Shipbuilding Progress was founded in 1954. Each year four issues appear (in April, July, September and December). Publications submitted to ISP should describe scientific work of high international standards, advancing subjects related to the field of Marine Technology, such as: conceptual design structural design hydromechanics and dynamics maritime engineering production of all types of ships production of all other objects intended for marine use shipping science and all directly related subjects offshore engineering in relation to the marine environment ocean engineering subjects in relation to the marine environment
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