抄録
In the industrial field, the drive system integrated the high speed motor and the gear is required to effectively utilize the limited space. However, mechanical gears often require their lubrication and cooling, they generate whilst noise and vibration. To overcome these problems, the magnetic gears have been expected. Magnetic gears achieve the system with maintenance-free, low noise and low vibration characteristics by contact-less power transformation. However, conventional magnetic gears are not suitable system for high speed motors because the mechanical strength is weak due to permanent magnets of the high speed rotor. This paper presents a novel reluctance magnetic gear and flux switching magnetic gear for the super high speed motor. The high speed rotor of the proposed magnetic gears is constructed by only iron core. Therefore, the structure is very simple and robust and it is possible to rotate in the high speed region. Moreover, the reluctance magnetic gear realizes high efficiency compared with the conventional surface permanent magnet (SPM) magnetic gear because the magnet eddy current loss on high speed rotor is not generated. While, the flux switching magnetic gear realizes the high torque density by utilizing the magnetomotive force of stationary field magnets. In this paper, the performances of these proposed magnetic gears including torque density, the system size, loss and efficiency are evaluated.
本文言語 | English |
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ホスト出版物のタイトル | 2017 IEEE Energy Conversion Congress and Exposition, ECCE 2017 |
出版社 | Institute of Electrical and Electronics Engineers Inc. |
ページ | 2445-2452 |
ページ数 | 8 |
巻 | 2017-January |
ISBN(電子版) | 9781509029983 |
DOI | |
出版ステータス | Published - 2017 11月 3 |
イベント | 9th Annual IEEE Energy Conversion Congress and Exposition, ECCE 2017 - Cincinnati, United States 継続期間: 2017 10月 1 → 2017 10月 5 |
Other
Other | 9th Annual IEEE Energy Conversion Congress and Exposition, ECCE 2017 |
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国/地域 | United States |
City | Cincinnati |
Period | 17/10/1 → 17/10/5 |
ASJC Scopus subject areas
- エネルギー工学および電力技術
- 電子工学および電気工学
- 再生可能エネルギー、持続可能性、環境
- 制御と最適化