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Parametric study of propeller boss cap fins for container ships

机译:集装箱船螺旋桨凸台鳍的参数研究

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ABSTRACT The global price of oil, which is both finite and limited in quantity, has been rising steadily because of the increasing requirements for energy in both developing and developed countries. Furthermore, regulations have been strengthened across all industries to address global warming. Many studies of hull resistance, propulsion and operation of ships have been performed to reduce fuel consumption and emissions. This study examined the design parameters of the propeller boss cap fin (PBCF) and hub cap for 6,000TEU container ships to improve the propulsion efficiency. The design parameters of PBCF have been selected based on the geometrical shape. Computational fluid dynamics (CFD) analysis with a propeller open water (POW) test was performed to check the validity of CFD analysis. The design of experiment (DOE) case was selected as a full factorial design, and the experiment was analyzed by POW and CFD analysis. Analysis of variance (ANOVA) was performed to determine the correlation among design parameters. Four design alternatives of PBCF were selected from the DOE. The shape of a propeller hub cap was selected as a divergent shape, and the divergent angle was determined by the DOE. Four design alternatives of PBCF were attached to the divergent hub cap, and the POW was estimated by CFD. As a result, the divergent hub cap with PBCF has a negative effect on the POW, which is induced by an increase in torque coefficient. A POW test and cavitation test were performed with a divergent hub cap with PBCF to verify the CFD result. The POW test result showed that the open water efficiency was increased approximately 2% with a divergent hub cap compared to a normal cap. The POW test result was similar to the CFD result, and the divergent hub cap with the PBCF models showed lower open water efficiency. This was attributed to an increase in the torque coefficient just like the CFD results. A cavitation test was performed using the 2 models selected. The test result showed that the hub vortex is increased downstream of the propeller.
机译:摘要由于发展中国家和发达国家对能源的需求不断增加,数量有限且数量有限的全球石油价格一直在稳步上涨。此外,所有行业的法规都得到了加强,以应对全球变暖。为了减少燃料消耗和排放,已经进行了许多关于船体抵抗力,推进和操作的研究。这项研究检查了6,000TEU集装箱船的螺旋桨凸台鳍片(PBCF)和轮毂盖的设计参数,以提高推进效率。已根据几何形状选择了PBCF的设计参数。进行了螺旋桨开放水(POW)测试的计算流体动力学(CFD)分析,以检查CFD分析的有效性。选择实验设计(DOE)案例作为全因子设计,并通过POW和CFD分析对实验进行分析。进行方差分析(ANOVA)以确定设计参数之间的相关性。从DOE中选择了PBCF的四个设计替代方案。选择螺旋桨毂盖的形状作为发散形状,发散角由DOE确定。 PBCF的四个设计替代方案附接到了不同的轮毂盖,并且POW由CFD估算。结果,带有PBCF的发散轮毂盖对POW产生了负面影响,这是由扭矩系数的增加引起的。使用带有PBCF的不同轮毂盖进行POW测试和空化测试,以验证CFD结果。 POW测试结果表明,与普通的阀盖相比,采用不同的阀盖,其开水效率提高了约2%。 POW测试结果与CFD结果相似,而PBCF模型的不同轮毂盖显示较低的开水效率。就像CFD结果一样,这归因于扭矩系数的增加。使用选择的两个模型进行了空化测试。测试结果表明,桨叶涡流在螺旋桨下游增加。

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