减小齿槽转矩的磁性行星齿轮箱优化设计

Fanchen Kong, Yeming Ge, Xiaoyong Zhu, L. Qiao, L. Quan
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引用次数: 12

摘要

与传统机械齿轮相比,磁性齿轮具有机械损耗低、免维护运行和固有过载保护等优点。然而,各部件上永磁体之间的相互作用不可避免地会产生齿槽转矩和转矩脉动,从而产生噪声和振动。本文提出了一种减小磁性行星齿轮箱齿槽转矩的新设计方法。为了实现齿槽转矩最小化和传动效率最大化的目标,将全局优化算法与有限元分析相结合,得到最佳极弧组合。在尺寸优化过程中,分别采用了单参数独立优化和准牛顿优化两种优化方法。研究结果表明,两种优化算法均能显著降低齿槽转矩和转矩脉动,提高传动效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing Design of Magnetic Planetary Gearbox for Reduction of Cogging Torque
Compared with the conventional mechanical gears, magnetic gears have some advantages such as low mechanical loss, maintenance-free operation and inherent overload protection. However, the interaction among the permanent magnets on the each part can inevitably produce cogging torque and torque ripple, which may cause noise and vibration. In this paper, a new design method to reduce the cogging torque is presented for the magnetic planetary gearbox. In order to achieve the goal of minimizing the cogging torque and maximizing the transmission efficiency, a global optimization algorithm and the finite element analysis (FEA) are integrated to obtain the best pole arc combination. In the process of size optimization, two optimization methods, single parameter independent optimization and Quasi Newton optimization, are applied respectively. The investigation results indicate that by using the two kinds of optimization algorithm, the cogging torque and torque ripple can be reduced significantly while the transmission efficiency can be greatly improved.
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