Sensitivity of manufacturing tolerances on cogging torque in interior permanent magnet machines with different slot/pole number
暂无分享,去创建一个
[1] R. Fiser,et al. Additional Cogging Torque Components in Permanent-Magnet Motors Due to Manufacturing Imperfections , 2009, IEEE Transactions on Magnetics.
[2] D. Howe,et al. Influence of design parameters on cogging torque in permanent magnet machines , 1997, 1997 IEEE International Electric Machines and Drives Conference Record.
[3] G. Ombach,et al. Influence of Additional Air Gaps Between Stator Segments on Cogging Torque of Permanent-Magnet Machines Having Modular Stators , 2012, IEEE Transactions on Magnetics.
[4] Kay Hameyer,et al. Manufacturing Tolerances: Estimation and Prediction of Cogging Torque Influenced by Magnetization Faults , 2012, IEEE Transactions on Magnetics.
[5] Mi-Ching Tsai,et al. Design and Operation of Interior Permanent-Magnet Motors With Two Axial Segments and High Rotor Saliency , 2010, IEEE Transactions on Magnetics.
[6] Z. Q. Zhu,et al. Influence of Manufacturing Tolerances on Cogging Torque in Interior Permanent Magnet Machines with Eccentric and Sinusoidal Rotor Contours , 2017, IEEE Transactions on Industry Applications.
[7] Yusuke Morita,et al. Reduction of Cogging Torque Due to Production Tolerances of Rotor by Using Dummy Slots Placed Partially in Axial Direction , 2015, IEEE Transactions on Industry Applications.
[8] Kum-Kang Huh,et al. Effect of number of layers on performance of fractional-slot concentrated-windings interior permanent magnet machines , 2011, 8th International Conference on Power Electronics - ECCE Asia.
[9] T. Sebastian,et al. Issues in reducing the cogging torque of mass-produced permanent-magnet brushless DC motor , 2004 .
[10] M.F. Rahman,et al. Design and Analysis of an Interior Permanent Magnet (IPM) Machine with Very Wide Constant Power Operation Range , 2008, IECON 2006 - 32nd Annual Conference on IEEE Industrial Electronics.
[11] Kum-Kang Huh,et al. Comparison of interior and surface PM machines equipped with fractional-slot concentrated windings for hybrid traction applications , 2011, 2011 IEEE Energy Conversion Congress and Exposition.
[12] I. Husain,et al. Permanent Magnet Synchronous Motor Magnet Designs with Skewing for Torque Ripple and Cogging Torque Reduction , 2007 .
[13] Steven A. Evans,et al. Salient pole shoe shapes of interior permanent magnet synchronous machines , 2010, The XIX International Conference on Electrical Machines - ICEM 2010.
[14] Z. Q. Zhu,et al. Influence of manufacturing tolerances on cogging torque in interior permanent magnet machines with eccentric and sinusoidal rotor contours , 2016, 2016 IEEE Energy Conversion Congress and Exposition (ECCE).
[15] Thomas M. Jahns,et al. Comparison of interior and surface PM machines equipped with fractional-slot concentrated windings for hybrid traction applications , 2011 .
[16] Zhiyong Wu,et al. Analytical Solution for Cogging Torque in Surface-Mounted Permanent-Magnet Motors With Magnet Imperfections and Rotor Eccentricity , 2014, IEEE Transactions on Magnetics.
[17] Kum-Kang Huh,et al. Effect of Number of Layers on Performance of Fractional-Slot Concentrated-Windings Interior Permanent Magnet Machines , 2015 .
[18] Ayman M. El-Refaie,et al. Fractional-Slot Concentrated-Windings Synchronous Permanent Magnet Machines: Opportunities and Challenges , 2010, IEEE Transactions on Industrial Electronics.
[19] M. L. Mohd Jamil,et al. Influence of pole and slot number combinations on cogging torque in permanent magnet machines with static and rotating eccentricities , 2013, 2013 IEEE Energy Conversion Congress and Exposition.
[20] Nicola Bianchi,et al. Design techniques for reducing the cogging torque in surface-mounted PM motors , 2000, Conference Record of the 2000 IEEE Industry Applications Conference. Thirty-Fifth IAS Annual Meeting and World Conference on Industrial Applications of Electrical Energy (Cat. No.00CH37129).