Title :
First experimental results of highly efficient permanent magnet synchronous machine for hybrid electric vehicle
Author :
Beti, L.T. ; Schafer, Uwe
Author_Institution :
Tech. Univ. Berlin, Berlin, Germany
fDate :
Aug. 30 2011-Sept. 1 2011
Abstract :
This report constitutes the third release of a project concerning the minimization of losses of a Permanent Magnet Synchronous Machine (PMSM) for an Hybrid Electric Vehicle (HEV) and introduces the first experimental results carried out on a prototype. The focus of the research is centred on the reduction of idle loss at high speed and low load via an asymmetrical rotor design with an inductance ratio Ld/Lq >; 1. Such a characteristic feature decreases the amount of current required in the flux weakening operation and makes the engine particularly suitable for loss-minimization control strategies. An appropriate test bench as well as the necessary components to control and feed the PMSM have been set up in order to test the prototype on-load operation. The characteristic diagram of the quadrature inductance Lq and the direct inductance Ld are presented and validate the design criteria for Ld/Lq >; 1. The current trajectories of Maximum Torque per Ampere (MTPA), Maximum Torque per Volt (MTPV) and Maximum Torque per Watt (MTPW) have been determined experimentally at several speeds.
Keywords :
hybrid electric vehicles; machine control; permanent magnet machines; rotors; synchronous machines; torque; asymmetrical rotor design; flux weakening operation; hybrid electric vehicle; idle loss reduction; loss-minimization control strategy; permanent magnet synchronous machine; quadrature inductance; Equations; Inductance; Inverters; Modulation; Prototypes; Stators; Torque; Loss-minimization Control; Maximum Torque per Ampere; Maximum Torque per Volt; Maximum Torque per Watt; Permanent Magnet Synchronous Motor; Saliency Ratio;
Conference_Titel :
Power Electronics and Applications (EPE 2011), Proceedings of the 2011-14th European Conference on
Conference_Location :
Birmingham
Print_ISBN :
978-1-61284-167-0
Electronic_ISBN :
978-90-75815-15-3