Three-Phase Air-Core Rotary Transformer Type Passive Variable Flux Motor Utilizing Carrier Harmonic Resonance
Author:
Affiliation:
1. Shizuoka University
Publisher
Institute of Electrical Engineers of Japan (IEE Japan)
Subject
Electrical and Electronic Engineering,Industrial and Manufacturing Engineering
Link
https://www.jstage.jst.go.jp/article/ieejias/142/9/142_666/_pdf
Reference46 articles.
1. (1) S. Maekawa, et al.: “Study of the Magnetization Method Suitable for Fractional-Slot Concentrated-Winding Variable Magnetomotive-Force Memory Motor”, in IEEE Transactions on Power Electronics, Vol. 29, No. 9, pp. 4877-4887 (2014), doi: 10.1109/TPEL. 2013.2288635.
2. (2) T. Fukushige, N. Limsuwan, T. Kato, K. Akatsu, and R. D. Lorenz: “Efficiency Contours and Loss Minimization Over a Driving Cycle of a Variable Flux-Intensifying Machine”, in IEEE Transactions on Industry Applications, Vol. 51, No. 4, pp. 2984-2989 (2015), doi: 10.1109/TIA. 2015.2404918.
3. (3) H. Yang, H. Lin, and Z. Q. Zhu: “Recent advances in variable flux memory machines for traction applications: A review”, in CES Transactions on Electrical Machines and Systems, Vol. 2, No. 1, pp. 34-50 (2018), doi: 10.23919/TEMS. 2018.8326450.
4. (4) A. S. Thomas, Z. Q. Zhu, and L. J. Wu: “Novel Modular-Rotor Switched-Flux Permanent Magnet Machines”, in IEEE Transactions on Industry Applications, Vol. 48, No. 6, pp. 2249-2258 (2012), doi: 10.1109/TIA. 2012.2226860.
5. (5) T. Okada, H. Matsumori, T. Kosaka, and N. Matsui: “Hybrid excitation flux switching motor with permanent magnet placed at middle of field coil slots and high filling factor windings”, in CES Transactions on Electrical Machines and Systems, Vol. 3, No. 3, pp. 248-258 (2019), doi: 10.30941/CESTEMS. 2019.00033.
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