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首页> 外文期刊>Mathematical Problems in Engineering >Design and Mathematical Analysis of a Novel Reluctance Force-Type Hybrid Magnetic Bearing for Flywheel with Gimballing Capability
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Design and Mathematical Analysis of a Novel Reluctance Force-Type Hybrid Magnetic Bearing for Flywheel with Gimballing Capability

机译:具有飞轮能力的新型飞轮磁阻力型混合磁轴承的设计与数学分析

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摘要

Magnetically suspended flywheel (MSFW) with gimballing capability fulfills requirements of precision and maneuvers for space applications. A novel reluctance force-type hybrid magnetic bearing (RFHMB) is presented based on analysis of demerits of Lorentz force-type magnetic bearing and common RFHMB. It features that radial and axial magnetic bearing units are integrated into a compact assembly with four separate biased permanent magnets and two conical stators; four radial poles with shoes and rotor made of iron-based amorphousness can reduce eddy loss. Equivalent magnetic circuits of permanent magnets and their control currents are presented. Simulation results indicate flux density fluctuates from 0.272 T to 0.41 T; rotor tilting does not affect the suspension force when rotor only tilts around X-axis or y-axis. When rotor drifts in X, Y, or Z direction and tilts around X-axis or y-axis simultaneously, force in corresponding directions slightly increases with tilting angle's enlargement, but the maximum change does not exceed 14%. Additional tilting torque mainly determined by uniformity of flux density in conical air gaps is 0.05 Nm which is far smaller than 11 Nm in common RFHMB; magnetic suspension force is effectively decoupled among X, Y, and Z directions; results prove that MSFW with gimballing capability theoretically meets maneuvering requirement of spacecraft.
机译:具有万向滚珠功能的磁悬浮飞轮(MSFW)满足空间应用的精度和机动性要求。在分析洛伦兹力式磁力轴承和普通RFHMB的缺点的基础上,提出了一种新型的磁阻力式磁力轴承。它的特点是将径向和轴向磁性轴承单元集成到一个紧凑的组件中,该组件具有四个分离的偏置永磁体和两个圆锥形定子。四个带有靴子和转子的径向极由铁基非晶质制成,可以减少涡流损失。介绍了永磁体的等效磁路及其控制电流。仿真结果表明,磁通密度在0.272 T到0.41 T之间波动。当转子仅绕X轴或y轴倾斜时,转子倾斜不会影响悬架力。当转子在X,Y或Z方向上漂移并同时绕X轴或y轴倾斜时,相应方向的力会随着倾斜角度的增大而略有增加,但最大变化不超过14%。额外的倾斜扭矩主要由锥形气隙中的磁通密度的均匀性决定,为0.05 Nm,远小于普通RFHMB中的11 Nm。磁悬浮力在X,Y和Z方向之间有效解耦;结果证明,具有惯性飞行能力的无国界医生在理论上可以满足航天器的机动性要求。

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  • 来源
    《Mathematical Problems in Engineering》 |2013年第5期|836058.1-836058.17|共17页
  • 作者

    Chune Wang; Jiqiang Tang;

  • 作者单位

    School of Instrument Science and Opto-electronics Engineering, Beihang University, Beijing 100191, China;

    School of Instrument Science and Opto-electronics Engineering, Beihang University, Beijing 100191, China;

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