Fatigue Life Prediction of a Coaxial Multi-Stage Magnetic Gear

S. Modaresahmadi, A. Hosseinpour, W. Williams
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引用次数: 11

Abstract

Magnetic gearing is an emerging approach to avoid contact failures from the gear teeth interface of mechanical gearboxes through a non-contact torque transmission concept. In this concept, magnetic flux between the inner and outer rotors is modulated through an array of magnetic pieces called the cage rotor. Despite the non-contact nature of magnetic gears in torque transmission, a minimal air-gap between the three rotors is required to achieve the best performance, which leads to more prerequisites in the design process, including bending analysis, thermal stress analysis, dynamic analysis, etc. Due to the fact that there are segmented magnets in a circumferential direction in the inner and outer rotors, as well as segmented pole pieces in the cage rotor, rotation of the gears causes oscillating forces in the active region. On the other hand, in order to increase the performance of the magnetic gearing system, steel bars in the active region are substituted with laminated stacks to gain stronger flow of magnetic flux throughout the system. The presence of the laminated parts is a potential candidate for failure under static and dynamic loads in the system, especially in long term system operation. Due to the lack of contact failure modes in magnetic gears, they are originally designed to be utilized in remote access applications, e.g. offshore, marine hydro-kinetic, and wind turbines, which require the longest operational life time. This demands fatigue analysis in all the critical parts under dynamic loads, specifically the laminated parts and rods holding magnetic components still. In this study, dynamic and fatigue analysis of a flux focusing multi stage magnetic gearbox is investigated through a multi-body dynamics and Finite Element Method, respectively.
同轴多级磁齿轮疲劳寿命预测
磁性齿轮传动是一种新兴的方法,以避免接触失效从齿轮齿面机械齿轮箱通过非接触扭矩传递的概念。在这个概念中,内外转子之间的磁通量通过称为笼形转子的磁片阵列进行调制。尽管磁齿轮在转矩传递中具有非接触的特性,但要使三个转子之间的气隙最小才能达到最佳性能,这就要求在设计过程中有更多的先决条件,包括弯曲分析、热应力分析、动态分析等。由于在内外转子中存在圆周方向的分段磁铁,以及保持架转子中存在分段极片,因此齿轮的旋转会在活动区域产生振荡力。另一方面,为了提高磁性齿轮传动系统的性能,在活动区域的钢筋被叠层堆叠取代,以获得整个系统更强的磁通流。叠层部件的存在是系统中静态和动态载荷下失效的潜在候选,特别是在长期系统运行中。由于磁性齿轮缺乏接触失效模式,它们最初被设计用于远程访问应用,例如海上,海洋水动力和风力涡轮机,这些应用需要最长的使用寿命。这就要求在动态载荷下对所有关键部件进行疲劳分析,特别是层压部件和保持磁性部件静止的杆。本文采用多体动力学方法和有限元方法对磁通聚焦多级磁力齿轮箱进行了动态分析和疲劳分析。
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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