Influence of Air-Gap Length on the Performance of a Three-phase Induction Motor with a Capacitive Auxiliary Stator Winding

被引:0
|
作者
Muteba, Mbika [1 ]
Nicolae, Dan Valentin [1 ]
机构
[1] Univ Johannesburg, Dept Elect & Elect Engn Technol, Johannesburg, South Africa
关键词
Airgap Length; Capacitive auxiliary winding; Efficiency; Power factor; Three-phase induction motor;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In order to avoid lower efficiency, poor power factor and lower torque density, the airgap length of a three-phase squirrel cage induction motor (SCIM) should not be designed very large. On other hand, the distortion of airgap flux density distribution can be minimized by enlarging the airgap length. This has informed machine designers to choose very carefully the airgap length while designing a three-phase SCIM. This paper deals with the influence that the airgap length has on the performance of a three-phase SCIM having a capacitive auxiliary three-phase stator winding. The three-phase auxiliary winding is only magnetically coupled to the stator main winding. A conventional 5.5 kW, 50-Hz, and 4-pole three-phase SCIM is modified to accommodate both main and auxiliary windings in the same stator slots, while maintaining the rated power to 5.5 kW. The results obtained from practical measurements evidenced that for a large airgap it is possible to obtain high efficiency and good power factor with the presence of a capacitive auxiliary stator winding. The high efficiency is mainly due the decrease in iron and stator copper losses. The iron losses decrease with increase in airgap length for the SCIM with or without a capacitive auxiliary winding, while the stator copper loss is obtained by reactively exciting the three-phase auxiliary stator winding.
引用
收藏
页码:547 / 552
页数:6
相关论文
共 50 条
  • [31] Modeling Radial Air-Gap Forces of Three-Phase Cage Induction Machines in Spatial Frequency Domain
    Bischof, W. M.
    Chatterjee, B.
    Boesing, M.
    Hennen, M. D.
    Kennel, R. M.
    2016 19TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS 2016), 2016,
  • [32] New elements in multicriterional optimization of condenser capacitance for induction motor with three-phase winding of stator and single-phase supply
    Rawicki, Stanislaw
    Nowak, Marcin
    PRZEGLAD ELEKTROTECHNICZNY, 2011, 87 (10): : 328 - 334
  • [33] Optimal Reference Frame Angle Approach for Air-Gap Flux Minimization in Dual Stator Winding Induction Machines
    Khoshhava, Mojtaba Ayaz
    Zarchi, Hossein Abootorabi
    Markadeh, Gholam Reza Arab
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2020, 35 (07) : 6658 - 6662
  • [34] Modeling for A Dual Three-Phase Induction Motor Based On A Winding Transformation
    Wang Bu-lai
    Gong Zhe-song
    Gu Wei
    Zhu Jian-Xin
    Guo Yi
    2008 IEEE CONFERENCE ON ROBOTICS, AUTOMATION, AND MECHATRONICS, VOLS 1 AND 2, 2008, : 973 - 977
  • [35] A Novel Wireless Motor Based on Three-Phase Six-Stator-Winding PMSM
    Huang, Yongcan
    Gao, Xingran
    Song, Zaixin
    Liu, Xuyang
    Liu, Chunhua
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2024, 71 (07) : 7590 - 7598
  • [36] A Novel Dual Three-Phase Permanent Magnet Synchronous Motor With Asymmetric Stator Winding
    Demir, Y.
    Aydin, M.
    IEEE TRANSACTIONS ON MAGNETICS, 2016, 52 (07)
  • [37] Detection of stator winding faults in induction motors using three-phase current monitoring
    Sharifi, Rasool
    Ebrahimi, Mohammad
    ISA TRANSACTIONS, 2011, 50 (01) : 14 - 20
  • [38] Harmonics reduction in DSC induction motors with two three-phase stator winding sets
    Bruno, O
    Landi, A
    Sani, L
    ELECTRIC MACHINES AND POWER SYSTEMS, 1999, 27 (12): : 1259 - 1268
  • [39] Influence of the V-type secondary on the air-gap magnetic field and performance of the linear induction motor
    Lv, Gang
    Zhou, Tong
    Zeng, Dihui
    IET ELECTRIC POWER APPLICATIONS, 2019, 13 (02) : 229 - 234
  • [40] AIR-GAP FIELD, INDUCED VOLTAGE AND THRUST IN THE SHORT-STATOR LINEAR INDUCTION-MOTOR
    DELEROI, W
    ARCHIV FUR ELEKTROTECHNIK, 1980, 62 (4-5): : 233 - 242