具有显著额定功率的超高速无轴承电机设计

Ashad Farhan, M. Johnson, K. Hanson, E. Severson
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引用次数: 11

摘要

电动机技术的目标是在尽可能紧凑的外形因素下提供最大功率,高效可靠。磁性材料和半导体器件的最新进展使新型电动机能够利用超高转速(100,000+ RPM)来提高功率密度。该技术受到与电机轴承相关的缺点的限制,主要是寿命不足和转子动力学,限制了电机的速度-功率能力。本文研究了一种基于无轴承永磁电机拓扑的磁悬浮超高速电机的设计,以解决这些挑战。设计目标是氢燃料电池压缩机的转速功率为16万RPM,功率为5.5 kW。该额定值是利用传统轴承的最高速度功率设计之一,并将扩大无轴承电机的速度功率额定值的限制。开发了详细的多物理场建模框架,并将其与多目标优化算法相结合,以探索设计空间。提出并研究了原型制造的优化设计方法。实验验证了模型框架的低速和平稳测试结果。
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Design of an Ultra-High Speed Bearingless Motor for Significant Rated Power
The goal of electric motor technology is to deliver maximum power in as compact of a form factor as efficiently and reliably as possible. Recent advancements in magnetic materials and semiconductor devices are enabling a new class of electric motors which utilize ultra high rotational speeds (100,000+ RPM) to increase power density. The technology is limited by shortcomings related to motor bearings, primarily insufficient lifetime and rotor dynamics that limit the speed-power capability of the electric machine. This paper investigates the design of a magnetically levitated, ultra-high speed motor based around a bearingless permanent magnet motor topology to solve these challenges. The design targets a speed-power capability of 160,000 RPM and 5.5 kW for a hydrogen fuel cell compressor. This rating is amongst the highest speed-power designs that utilize conventional bearings and would expand the limits of speed-power rating of a bearingless motor. A detailed multi-physics modeling framework is developed and coupled to a multi-objective optimization algorithm to explore the design space. An optimal design is proposed and investigated for prototype fabrication. Experimental validation of the modeling framework is provided with low speed and stationary test results.
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