Novel Modular Switched Reluctance Machines for Performance Improvement

被引:21
|
作者
Li, G. J. [1 ]
Ma, X. Y. [1 ]
Jewell, G. W. [2 ]
Zhu, Z. Q. [1 ]
机构
[1] Univ Sheffield, Dept Elect & Elect Engn, Sheffield S10 2TN, S Yorkshire, England
[2] Univ Sheffield, Dept Elect & Elect Engn, Elect Engn, Sheffield S10 2TN, S Yorkshire, England
关键词
Flux gaps; modular structure; single layer winding; switched reluctance machine; ACOUSTIC NOISE; DESIGN; REDUCTION; VIBRATION; MOTORS; SRM;
D O I
10.1109/TEC.2018.2790079
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Compared to nonmodular machines, modular topologies become increasingly attractive due to their simplified manufacture process, better fault-tolerant capability, and potentially reduced material consumption. In order to maintain or even enhance the machine performance while achieving high fault-tolerant capability, novel modular, single-layer winding switched reluctance machines (SRMs) with different pole numbers are proposed, which are supplied by rectangular wave current with different conduction angles. The influences of the pole number and flux gap width between E-core segmented stators on the electromagnetic performance have been investigated in terms of self- and mutual inductances, electromagnetic torque, copper loss, iron loss, and radial force. It has been found that the modular structures with higher rotor pole numbers than stator slot numbers (12-slot/14-pole and 12-slot/16-pole SRMs) can maintain and even improve the average torque due to the nature of self and mutual inductances. In addition, the torque ripples for modular machines are significantly reduced (below 50%), so do the iron loss and radial force, leading to higher efficiency albeit with potentially lower vibration and acoustic noise. Two prototypes with 12-slot/8-pole and 12-slot/14-pole combinations have been built with both nonmodular and modular structures to validate the predictions in terms of inductances and static torques.
引用
收藏
页码:1255 / 1265
页数:11
相关论文
共 50 条
  • [31] Flux and torque control of switched reluctance machines
    Barrass, PG
    Mecrow, BC
    IEE PROCEEDINGS-ELECTRIC POWER APPLICATIONS, 1998, 145 (06): : 519 - 527
  • [32] ON FAULT TOLERANCE INCREASE OF SWITCHED RELUCTANCE MACHINES
    Szabo, Lorand
    Ruba, Mircea
    EUROCON 2009: INTERNATIONAL IEEE CONFERENCE DEVOTED TO THE 150 ANNIVERSARY OF ALEXANDER S. POPOV, VOLS 1- 4, PROCEEDINGS, 2009, : 734 - +
  • [33] Measurement and Performance Analyses of Dry-running and Canned Switched Reluctance Machines
    Laudensack, C.
    Polonskiy, Y.
    Gerling, D.
    2015 IEEE INTERNATIONAL ELECTRIC MACHINES & DRIVES CONFERENCE (IEMDC), 2015, : 376 - 382
  • [34] Preliminary Investigation of Electromagnetic and Thermal Performance of Closed Stator Switched Reluctance Machines
    Shuai, Wang
    Rong, Su
    Jet, Tseng King
    Viswanathan, Vaiyapuri
    Gupta, Amit
    2016 IEEE 2ND ANNUAL SOUTHERN POWER ELECTRONICS CONFERENCE (SPEC), 2016,
  • [35] STRUCTURE OF HIGH-PERFORMANCE SWITCHED RELUCTANCE MACHINES AND THEIR POWER FEEDING CIRCUITRIES
    AMIN, B
    EUROPEAN TRANSACTIONS ON ELECTRICAL POWER ENGINEERING, 1992, 2 (04): : 215 - 221
  • [36] Switched reluctance machines with simple hoop windings
    Amreiz, HM
    Mecrow, BC
    Weiner, C
    INTERNATIONAL CONFERENCE ON POWER ELECTRONICS, MACHINES AND DRIVES, 2002, (487): : 522 - 527
  • [37] An analytical model of switched reluctance machines - Discussion
    Stiebler, M
    Liu, K
    IEEE TRANSACTIONS ON ENERGY CONVERSION, 1999, 14 (04) : 1106 - 1107
  • [38] Directly Cooled Windings in Switched Reluctance Machines
    Ibrahim, Mohamed N.
    Nonneman, Jasper
    Mohamed, Abdalla Hussein
    Daem, Andries
    Abdallh, Ahmed A-E
    Schlimpert, Stephan
    De Paepe, Michel
    Sergeant, Peter
    2020 INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES (ICEM), VOL 1, 2020, : 819 - 825
  • [39] A Review on Switched Reluctance Machines for Electric Vehicles
    Zabihi, N.
    Gouws, R.
    PROCEEDINGS 2016 IEEE 25TH INTERNATIONAL SYMPOSIUM ON INDUSTRIAL ELECTRONICS (ISIE), 2016, : 799 - 804
  • [40] Numerical and Analytical Modeling of Switched Reluctance Machines
    Zhang Zhihui
    Li Yuren
    JOURNAL OF COMPUTERS, 2012, 7 (12) : 3036 - 3043