Journal of Electrical Engineering ›› 2015, Vol. 10 ›› Issue (4): 11-25.
Previous Articles Next Articles
Z. Q. Zhu,Y.J. Zhou
Received:
2015-03-02
Online:
2015-04-25
Published:
2015-04-25
Supported by:
CLC Number:
Z. Q. Zhu,Y.J. Zhou. Recent Development in Stator Wound Field Synchronous Machines[J]. Journal of Electrical Engineering, 2015, 10(4): 11-25.
Add to citation manager EndNote|Reference Manager|ProCite|BibTeX|RefWorks
[1] | M Sagawa . Thirty four years with NdFeB-invention, development and future [C]. Keynote Speech at International Conference on NdFeB Magnets Supply Chain, Critical Properties & Applications, 3-5 March 2014, Ningbo, China, A01-Keynote, 2014: 1-5. |
[2] | Z Q Zhu . Novel permanent magnet machines- challenges and applications [C]. Keynote Speech at International Conference on NdFeB Magnets Supply Chain, Critical Properties & Applications, 3-5 March 2014, Ningbo, China, A03-Keynote, 2014: 1-10. |
[3] | Z Q Zhu . Permanent magnet machines for traction applications. in Encyclopedia of Automotive Engineering[M]. Chichester: John Wiley & Sons Ltd, 2015: 1313-1332. |
[4] | N Bianchi, T M Jahns . Design, analysis, and control of interior PM synchronous machines[M]. 1st ed, Padova: CLEUP, 2004. |
[5] |
D Dorrell, L Parsa, I Boldea . Automotive electric motors, generators, and actuator drive systems with reduced or no permanent magnets and innovative design concepts[J]. IEEE Transactions on Industrial Electronics, 2014,61(10):5693-5695.
doi: 10.1109/TIE.2014.2307839 |
[6] |
I Boldea, L N Tutelea, L Parsa , et al. Automotive electric propulsion systems with reduced or no permanent magnets: an overview[J]. IEEE Transactions on Industrial Electronics, 2014,61(10):5696-5711.
doi: 10.1109/TIE.2014.2301754 |
[7] | I Boldea, L N Tutelea, F Blaabjerg . High power wind generator designs with less or no PMs: An overview [C]. Keynote Speech at Industrial Electronics International Conference on Electrical Machines and Systems (ICEMS), Hangzhou, China, 2014: 1-14. |
[8] | Z Q Zhu . Novel stator electrically field excited synchronous machines without rare-earth magnet [C]. Keynote Speech at International Conference on and Exhibition on Ecological Vehicles and Renewable Energies EVER’14, March 25-27, 2014, Monte-Carlo (Monaco).Accepted for publication in IEEE Transactions on Magnetics. |
[9] |
A Chiba, Y Takano, M Takeno , et al. Torque density and efficiency improvements of a switched reluctance motor without rare-earth material for hybrid vehicles[J]. IEEE Transactions on Industry Applications, 2011,47(3):1240-1246.
doi: 10.1109/TIA.2011.2125770 |
[10] | A Vagati, B Boazzo, P Guglielmi, et al. Ferrite assisted synchronous reluctance machines: a general approach [C]. International Conference on Electrical Machines, 2012: 1315-1321. |
[11] |
P Guglielmi, B Boazzo, E Armando , et al. Permanent-magnet minimization in PM-Assisted Synchronous reluctance motors for wide speed range[J]. IEEE Transactions on Industry Applications, 2013,49(1):31-41.
doi: 10.1109/TIA.2012.2229372 |
[12] |
M Obata, S Morimoto, M Sanada , et al. High-performance PMASynRM with ferrite magnet for EV/HEV applications considering productivity[J]. IEEE Transactions on Industry Applications, 2014,50(4):2427-2435.
doi: 10.1109/TIA.2013.2294999 |
[13] |
S Morimoto, S Ooi, Y Inoue , et al. Experimental evaluation of a rare-earth-free PMASynRM with ferrite magnets for automotive applications[J]. IEEE Transactions on Industrial Electronics, 2014,61(10):5749-5756.
doi: 10.1109/TIE.2013.2289856 |
[14] |
H Cai, B Guan, L Xu . Low-cost ferrite PM-assisted synchronous reluctance machine for electric vehicles[J]. IEEE Transactions on Industrial Electronics, 2014,61(10):5741-5748.
doi: 10.1109/TIE.2014.2304702 |
[15] | Y Guan, Z Q Zhu, A A Afinowi , et al. Comparative study of reluctance and PM assisted reluctance machines and Toyota Prius IPM machines for HEV applications [C]. The 17th International Conference on Electrical Machines and Systems (ICEMS2014), Hangzhou, China, 2014. |
[16] |
L Alberti, N Bianchi, S Bolognani . Variable-speed induction machine performance computed using finite-element[J]. IEEE Transactions on Industry Applications, 2011,47(2):789-797.
doi: 10.1109/TIA.2010.2103914 |
[17] |
D G Dorrell, A M Knight, L Evans , et al. Analysis and design techniques applied to hybrid vehicle drive machines-assessment of alternative IPM and induction motor topologies[J]. IEEE Transactions on Industrial Electronics, 2012,59(10):3690-3699.
doi: 10.1109/TIE.2011.2165460 |
[18] |
G Pellegrino, A Vagati, B Boazzo , et al. Comparison of induction and PM synchronous motor drives for EV application including design examples[J]. IEEE Transactions on Industry Applications, 2012,48(6):2322-2332.
doi: 10.1109/TIA.2012.2227092 |
[19] | J Goss, M Popescu, D Staton . A comparison of an interior permanent magnet and copper rotor induction motor in a hybrid electric vehicle application [C]. IEEE International Electric Machines Drives Conference on (IEMDC), Chicago, 2013: 220-225. |
[20] | Y Guan, Z Q Zhu, I A A Afinowi, et al. Calculation of torque-speed characteristic of induction machine for electrical vehicle application using analytical method [C]. 2014 International Conference on Electrical Machines , Berlin, 2014: 2715-2721. |
[21] | Y Guan, Z Q Zhu, I Afinowi , et al. Influence of machine design parameters on torque-speed characteristic of induction machine for electrical vehicle application[J]. IET Proceedings of Electrical Systems in Transportation, in press. |
[22] | Y Guan, Z Q Zhu, I A A Afinowi , et al.Comparison between induction machine and interior permanent magnet machine for electrical vehicle application [C]. International Conference on Electrical Machines and Systems, ICEMS2014, Hangzhou, China, 2014. |
[23] |
M Takeno, A Chiba, N Hoshi , et al. Test results and torque improvement of the 50kW switched reluctance motor designed for hybrid electric vehicles[J]. IEEE Transactions on Industry Applications, 2012,48(4):1327-1334.
doi: 10.1109/TIA.2012.2199952 |
[24] |
A Chiba, K Kiyota . Design of switched reluctance motor competitive to 60-kW IPMSM in third-generation hybrid electric vehicle[J]. IEEE Transactions on Industry Applications, 2012,48(6):2303-2309.
doi: 10.1109/TIA.2012.2227091 |
[25] |
K Kiyota, T Kakishima, A Chiba . Comparison of test result and design stage prediction of switched reluctance motor competitive with 60-kW rare-earth PM motor[J]. IEEE Transactions on Industrial Electronics, 2014,61(10):5712-5721.
doi: 10.1109/TIE.2014.2304705 |
[26] | A Vagati, G Franceschini, I Marongiu, et al. Design criteria of high performance synchronous reluctance motors [C]. IEEE Industry Applications Society Annual Meeting, 1992: 66-73. |
[27] | A Vagati, M Pastorelli, G Francheschini , et al. Design of low-torque-ripple synchronous reluctance motors[J]. IEEE Transactions on Industry Applications, 1998,34(4):758-765 |
[28] | A Vagati, A Canova, M Chiampi , et al. Design refinement of synchronous reluctance motors through finite-element analysis[J]. IEEE Transactions on Industry Applications, 2000,36(4):1094-1102. |
[29] | D G Dorrell. Are wound-rotor synchronous motors suitable for use in high efficiency torque-dense automotive drives? [C]. Annual Conference on IEEE Industrial Electronics Society (IECON), Montreal, 2012: 4880-4885. |
[30] | M Strauch, S Dewenter, A Binder , et al. Calculation of the electromagnetic characteristics of an electrically excited synchronous motor for an EV[J]. IEEE Vehicle Power and Propulsion Conference (VPPC), Seoul, 2012: 1086-1091. |
[31] |
W Q Chu, Z Q Zhu, J T Chen . Simplified analytical optimization and comparison of torque densities between electrically excited and permanent magnet machines[J]. IEEE Transactions on Industrial Electronics, 2014,61(9):5000-5011.
doi: 10.1109/TIE.2013.2279119 |
[32] | W Q Chu, Z Q Zhu, J Zhang , et al. Investigation on operational envelops and efficiency maps of electrically excited machines for electrical vehicle applications[J]. IEEE Transactions on Magnetics in press. |
[33] | M L Bash, S D Pekarek . Modeling of salient-pole wound-rotor synchronous machines for population-based design[J]. IEEE Transactions on Energy Conversions, 2011,26(2):381-392. |
[34] | M L Bash, S D Pekarek, S Sudhoff, et al. A comparison of permanent magnet and wound rotor synchronous machines for portable power generation [C]. IEEE Power and Energy Conference at Illinois (PECI), Urbana-Champaign, 2010: 1-6. |
[35] |
H Liu, L Xu, M Shangguan , et al. Finite element analysis of 1 MW high speed wound-rotor synchronous machine[J]. IEEE Transactions on Magnetics, 2012,48(11):4650-4653.
doi: 10.1109/TMAG.2012.2198050 |
[36] |
P Rasilo, A Belahcen, A Arkkio , Importance of iron-loss modeling in simulation of wound-field synchronous machines[J]. IEEE Transactions on Magnetics, 2012,48(9):2495-2504.
doi: 10.1109/TMAG.2012.2195190 |
[37] | V Ostovic . Performance comparison of wound field and permanent magnet excited electric machines[J]. 2014 IEEE International Energy Conference on (ENERGYCON), 2014: 106-112. |
[38] | W Q Chu, Z Q Zhu, D Stone, et al. Comparison of electrically excited and interior permanent magnet machines for hybrid electric vehicle application [C]. International Conference on Electrical Machines and Systems, ICEMS2014, Hangzhou, China, 2014. |
[39] | D W J Pille . Performance of split-coil switched reluctance drive[J]. Proceedings of IEE, 1988,135(6):318-323. |
[40] | S Li, F Liang, Y Zhao , et al. A doubly salient doubly excited variable reluctance motor[J]. IEEE Transactions on Industry Applications, 1995,31(1):99-106. |
[41] | F Liang, Y Liao, T A Lipo . A new variable reluctance motor utilizing an auxiliary commutation winding[J]. IEEE Transactions on Industry Applications, 1994,30(2):423-432. |
[42] | Y Li, J D Lloyd, G E Horst. Switched reluctance motor with DC assisted excitation [C]. Proceedings of IEEE Industry Applications Society Annual Meeting, 1996: 801-807. |
[43] | C Pollock, M Wallace. The flux switching motor, a dc motor without magnets or brushes [C]. Conference on Rec. IEEE IAS Annual Meeting, 1999,3:1980-1987. |
[44] | H Pollock, C Pollock, R Walter, et al. Low cost, high power density, flux switching machines and drives for power tools [C]. Conference on Rec. IEEE IAS Annual Meeting, 2003,3:1451-1457. |
[45] | J T Chen, Z Q Zhu, S Iwasaki, et al. Low cost flux-switching brushless AC machine [C]. Proceedings of IEEE Vehicle Power and Propulsion Conference (VPPC), 2010: 1-6. |
[46] | E Sulaiman, T Kosaka, et al. A new structure of 12slot-10pole field-excitation flux switching synchronous machine for hybrid electric vehicles [C]. Proceedings of 14th European Conference on Power Electronics and Applications (EPE-2011), 2011: 1-10. |
[47] | A Zulu, B C Mecrow, M Armstrong . A wound-field three-phase flux-switching synchronous motor with all excitation source on the stator[J]. IEEE Transactions on Industry Applications, 2010,46(6):2363-2371. |
[48] | A Zulu, B C Mecrow, M Armstrong. Topologies for wound-field three-phase segmented-rotor flux-switching machines [C]. IET Conference on Power Electronics, Machines and Drives (PEMD 2010), 2010: 1-6. |
[49] |
Y Tang , J J H Paulides, T E Motoasca , et al. Flux-switching machine with DC excitation[J]. IEEE Transactions on Magnetics, 2012,48(11):3583-3585.
doi: 10.1109/TMAG.2012.2199100 |
[50] | J Chen, R Chen, C Y Gong, et al. Study on variable speed direct drive wind energy conversion system with doubly salient electro- magnetic generator [C]. 2008 International Conference on Electrical Machines and Systems, ICEMS2008, 2008,5(2):2401-2407. |
[51] | Y Wang, Z Deng . Analysis of electromagnetic performance and control schemes of electrical excitation flux-switching machine for DC power system[J]. IEEE Transactions on Energy Conversions, 2012,27(4):844-855. |
[52] |
B Gaussens, E Hoang, O Barriere , et al. Analytical armature reaction field prediction in field-excited flux-switching machines using an exact relative permeance function[J]. IEEE Transactions on Magnetics, 2013,49(1):628-641.
doi: 10.1109/TMAG.2012.2211886 |
[53] |
B Gaussens, E Hoang, O Barriere , et al. Analytical approach for air-gap modeling of field-excited flux-switching machine: no-load operation[J]. IEEE Transactions on Magnetics, 2012,48(9):2505-2517.
doi: 10.1109/TMAG.2012.2196706 |
[54] | T Okazawa, T Komine, S Simomura. Slipring-less winding excited synchronous motor with both armature and DC field widnings on stator [C]. IEE Technical Meeting on Rotating Machinery, Japan, RM-06-138, 2006: 77-82. |
[55] | Y Kashitani1, S Shimomura. Novel slipring-less winding-excited synchronous machine [C]. International Conference on Electrical Machines and Systems (ICEMS2011), 2011: 1-6. |
[56] | T Fukami, Y Matsuura, K Shima, et al. Development of a low-speed multi-pole synchronous machine with a field winding on the stator side [C]. International Conference on Electrical Machines (ICEM2010), Rome, Italy, 2010: 1-6. |
[57] |
T Fukami, Y Matsuura, K Shima , et al. A multi-pole synchronous machine with non-overlapping concentrated armature and field windings on the stator[J]. IEEE Transactions on Industrial Electronics, 2012,59(6):2583-2591.
doi: 10.1109/TIE.2011.2157293 |
[58] |
T Fukami, H Aoki, K Shima , et al. Assessment of core losses in flux-modulating synchronous machine[J]. IEEE Transactions on Industry Applications, 2012,48(2):603-611.
doi: 10.1109/TIA.2011.2180286 |
[59] | Y Kano, T Mano. Design and performance of slipring-less winding excited synchronous motor for hybrid electric vehicle applications [C]. IEEE International Conference on Power Electronics, Drives and Energy Systems, 2012: 1-6. |
[60] |
X Liu, Z Q Zhu . Electromagnetic performance of novel variable flux reluctance machines with dc-field coil in stator[J]. IEEE Transactions on Magnetics, 2013,49(6):3020-3028.
doi: 10.1109/TMAG.2012.2235182 |
[61] |
X Liu, Z Q Zhu . Stator/rotor pole combinations and winding configurations of variable flux reluctance machines[J]. IEEE Transactions on Industry Applications, 2014,50(6):3675-3684.
doi: 10.1109/TIA.2014.2315505 |
[62] | J T Shi, X Liu, D Wu , et al. Influence of stator and rotor pole arcs on electromagnetic torque of variable flux reluctance machines[J]. IEEE Transactions on Magnetics, 2014,50(11): in Press. |
[63] |
X Liu, Z Q Zhu . Comparative study of novel variable flux reluctance machines with doubly fed doubly salient machines[J]. IEEE Transactions on Magnetics, 2013,49(7):3838-3841.
doi: 10.1109/TMAG.2013.2242047 |
[64] | Z Q Zhu, X Liu, Z P Pan . Investigation of vibration and noise in novel variable flux reluctance machine with reference to switched reluctance machine[J]. Transaction of China Electrotechnical Society, 2013,28(11):9-18. |
[65] | X Liu, Z Q Zhu, D Wu. Evaluation of efficiency optimized variable flux reluctance machine for EVs/HEVs with reference to interior PM machine [C]. International Conference on Electrical Machines and Systems, ICEMS2014, Hangzhou, China, 20-23 October, 2014. |
[66] |
Y J Zhou, Z Q Zhu . Comparison of low-cost single-phase wound-field switched-flux machines[J]. IEEE Transactions on Industry Applications, 2014,50(5):3335-3345.
doi: 10.1109/TIA.2014.2311511 |
[67] |
Y J Zhou, Z Q Zhu . Comparison of wound-field switched-flux machines[J]. IEEE Transactions on Industry Applications, 2014,50(5):3314-3324.
doi: 10.1109/TIA.2014.2309726 |
[68] | Z Q Zhu, Y J Zhou, J T Chen . Investigation of non-overlapping stator wound field synchronous machines[J].IEEE Transactions on Energy Conversions, under review/revision. |
[69] | F Khan, E Sulaiman, M Z Ahmad. Coil test analysis of wound-field three-phase flux switching machine with non-overlapping winding and salient rotor [C]. 2014 IEEE International Power Engineering and Optimization Conference (PEOCO2014), 2014: 243-247. |
[70] | Z Q Zhu, D Evans. Overview of recent advances in innovative electrical machines, with particular reference to magnetically geared switched flux machines [C]. Keynote Speech at International Conference on Electrical Machines and Systems, ICEMS2014, Hangzhou, China, 2014: 1-10. |
[71] | Z Q Zhu, Z Z Wu, D Evans , et al. A wound field switched flux machine with field and armature windings separately wound in double stators [J]. IEEE Transactions on Energy Conversions,In Press. |
[72] | Z Q Zhu, Z Z Wu, X Liu . A partitioned stator variable flux reluctance machine[J].IEEE Transactions on Energy Conversions, under revision. |
[73] | P J Lawrenson, J M Stephenson, P T Blenkinsop , et al. Variable-speed switched reluctance motors[J]. IEE Proceedings, 1980,127(4):253-265. |
[74] | T J E Miller . Switched reluctance motors and their control[M]. Oxford, U.K.: Magna Physics Pub., 1993. |
[75] | Z Q Zhu. Switched flux permanent magnet machines -innovation continues [C]. Plenary Session Speech, International Conference on Electrical Machines and Systems, ICEMS2011, Beijing, Paper Keynote Speech-06, 2011: 1-10. |
[76] | M Cheng, W Hua, J Zhang , et al. Overview of stator-permanent magnet brushless machines[J]. IEEE Transactions on Industrial Electronics, 2011,58(11):5087-5101. |
[77] | M Abbasian, M Moallem, B Fahimi . Double-stator switched reluctance machines (DSSRM): fundamentals and magnetic force analysis[J]. IEEE Transactions on Energy Conversions, 2010,25(3):589-597. |
[1] | Cheng Li,Tianqi Xu,Yan Li. A Novel Design of Auto-Transformer with Common Core for Constant Flux and Variable Flux [J]. Journal of Electrical Engineering, 2018, 13(3): 34-41. |
[2] | Yaojing Feng, Fang Li, Shoudao Huang, Ning Yang. Variable-Flux Outer-Rotor Permanent Magnet Synchronous Motor for In-Wheel Direct-Drive Applications [J]. Chinese Journal of Electrical Engineering, 2018, 4(1): 28-35. |
[3] | Chen Jiansong,Bai Wenjie,Zhou Rong,Liu Lidong,Liu Bing,Wei Jiadan. Initial Rotor Position Detection Method of SPMSM Based on High Frequency Current Injection Method [J]. Journal of Electrical Engineering, 2017, 12(4): 45-50. |
[4] | Zhuoran Zhang*, Jincai Li, Ye Liu, Yanwu Xu, Yangguang Yan. Overview and Development of Variable Frequency AC Generators for More Electric Aircraft Generation System [J]. Chinese Journal of Electrical Engineering, 2017, 3(2): 32-40. |
[5] | Yuting Gao, Ronghai Qu, and Dawei Li. Improved Hybrid Method to Calculate Inductances of Permanent Magnet Synchronous Machines with Skewed Stators Based on Winding Function Theory [J]. Chinese Journal of Electrical Engineering, 2016, 2(1): 52-61. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||