Design optimization of an axial gap permanent magnet brushless DC motor for electric vehicle applications

This paper describes a method of design and multiobjective optimization of an axial field permanent magnet brushless DC machine (BDCM), primarily aimed for electric vehicle propulsion applications. The disc type permanent magnet brushless DC motor has two stator windings connected in parallel with its rotor sandwiched between them. The simplified design equations for an axial gap trapezoidal back EMF motor are obtained and programmed using the software package QPRO. Then using classical design approach, design parameters for a 100 hp, 3200 RPM, 216 V BDCM are obtained. This design configuration is then used as the starting design point for the multiobjective optimization process, where the objective is to maximize the efficiency and the specific power. The feasibility frontier is obtained as a set of optimal solutions, from which a most suitable design parameters can be selected depending on the user preferences. The advantage of this method is that much time is saved in developing the optimization program. Also, the motor design engineer does not have to be an expert in optimization theory in order to obtain a superior design with a very short time.

[1]  Nady Boules,et al.  FIELD ANALYSIS FOR A HIGH-POWER, HIGH-SPEED PERMANENT MAGNET SYNCHRONOUS MACHINE OF THE DISC CONSTRUCTION TYPE , 1980 .

[2]  G. Slemon On the design of high performance PM motors , 1992, Conference Record of the 1992 IEEE Industry Applications Society Annual Meeting.

[3]  R. Krishnan,et al.  A comparative study of various motor drive systems for aircraft applications , 1991, Conference Record of the 1991 IEEE Industry Applications Society Annual Meeting.

[4]  C.C. Chan,et al.  Axial-Field Electrical Machines - Design and Applications , 1987, IEEE Transactions on Energy Conversion.

[5]  O. Ojo,et al.  Multiobjective optimum design of electrical machines for variable speed motor drives , 1991, Conference Record of the 1991 IEEE Industry Applications Society Annual Meeting.

[6]  R.G. Harley,et al.  Looking for an optimal rotor for high speed permanent magnet synchronous machine , 1992, Conference Record of the 1992 IEEE Industry Applications Society Annual Meeting.

[7]  Duane C. Hanselman,et al.  Brushless Permanent-Magnet Motor Design , 1994 .

[8]  G.A.J. Amaratunga,et al.  Optimum Magnetic Circuit Configurations for Permanent Magnet Aerospace Generators , 1985, IEEE Transactions on Aerospace and Electronic Systems.

[9]  H. R. Bolton,et al.  Investigation into a class of brushless DC motor with quasisquare voltages and currents , 1986 .