2 ) emissions, it will be necessary to increase the efficiency of shi'/> Magnetic–Mechanical Performance Analysis and Experimental Validation of Noncontact Coaxial Magnetic Gear for a Contra-Rotating Propeller in an Electric Outboard
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Magnetic–Mechanical Performance Analysis and Experimental Validation of Noncontact Coaxial Magnetic Gear for a Contra-Rotating Propeller in an Electric Outboard

机译:电舷外旋转螺旋桨对旋转螺旋桨非接触同轴磁齿的磁力性能分析及实验验证

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摘要

To reduce carbon dioxide (CO 2 ) emissions, it will be necessary to increase the efficiency of ships, and one approach to consider is the contra-rotating propeller (CRP). A CRP system can significantly improve the propulsion efficiency by recovering a part of the energy loss to the rotational flow and could reduce fuel consumption. Magnetic gears have significant advantages compared with mechanical gears in terms of low vibration, noise, abrasion, reliability and high efficiency driving, and overload protection, due to the physical isolation of the input and output shafts. Using the specifications of an electric outboard, the outer diameter and gear ratio of the magnetic gear were selected and a main effect analysis was performed to determine the sensitive design variables. Then, an optimal model was proposed using the response surface methodology, for effective design variables selected by the main effect analysis. In addition, the vibration stability of the optimal model was verified with a one-way coupled (magnetic–mechanical) performance analysis, based on the results of a 3-D magnetic field analysis.
机译:减少二氧化碳(CO 2 )排放,有必要提高船舶的效率,以及一种考虑的方法是对抗旋转螺旋桨(CRP)。 CRP系统可以通过回收到旋转流量的一部分能量损失并且可以降低燃料消耗来显着提高推进效率。由于输入和输出轴的物理隔离,磁齿轮与机械齿轮相比,与机械齿轮相比,与机械齿轮相比具有显着的优点。使用电舷外的规格,选择磁齿轮的外径和齿轮比,并进行主要效果分析以确定敏感的设计变量。然后,使用响应面方法提出了一种最佳模型,用于通过主要效果分析选择的有效设计变量。此外,基于3-D磁场分析的结果,通过单向耦合(磁性机械)性能分析来验证最佳模型的振动稳定性。

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