Title :
Torque Density Elevation in Concentrated Winding Interior PM Synchronous Motor With Minimized Magnet Volume
Author :
Mi-Jung Kim ; Su-Yeon Cho ; Ki-Doek Lee ; Jae-Jun Lee ; Jung-Ho Han ; Tae-Chul Jeong ; Won-Ho Kim ; Dae-hyun Koo ; Ju Lee
Author_Institution :
Dept. of Electr. Eng., Hanyang Univ., Seoul, South Korea
Abstract :
Permanent magnet (PM) synchronous motors (PMSMs) have been used to drive a number of vehicles. They have high torque density, high efficiency, and a wide speed range. However, the high cost of PMs is disadvantageous. This paper presents a technique for increasing the torque density by modifying the shape of the PMs and minimizing the magnet volume. The PM characteristics such as flux density, demagnetizing force, PM energy product, and the air-gap flux density are represented by a lumped magnetic equivalent circuit when the thickness and width of the PM are increased for the same volume but with different shapes. The torque, torque ripple, core loss, magnet loss, and efficiency of three interior (IPMSM) models designed by the proposed method are compared by finite element analysis. In addition, the demagnetization of the PM due to high temperature, maximum torque load angle, and an adverse field is analyzed. Finally, the analysis result is compared with that of the experiment to verify the proposed model.
Keywords :
demagnetisation; finite element analysis; machine windings; permanent magnet motors; synchronous motors; IPMSM model; PM characteristics; PM demagnetization; PM energy product; PMSM; adverse field; air-gap flux density; concentrated winding interior PM synchronous motor; core loss; demagnetizing force; finite element analysis; flux density; lumped magnetic equivalent circuit; magnet loss; magnet volume minimization; maximum torque load angle; minimized magnet volume; permanent magnet synchronous motors; speed range; three-interior model efficiency; torque density elevation; torque ripple; Air gaps; Atmospheric modeling; Demagnetization; Load modeling; Magnetic flux; Saturation magnetization; Torque; Energy product; interior permanent magnet synchronous motor (IPMSM); magnet shape; magnet volume; permanent magnet (PM); torque density;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2013.2241747