Title :
Reluctance synchronous machine drive for hybrid electric vehicle
Author :
Malan, Johan ; Kamper, Maarten J. ; Williams, Paul N T
Author_Institution :
Dept. of Electr. & Electron. Eng., Stellenbosch Univ., South Africa
Abstract :
The reluctance synchronous machine drive is amazingly not mentioned in literature as a possible alternative drive for electric vehicle propulsion. The paper describes the use of a small, compact reluctance synchronous machine drive for a series hybrid electric vehicle. The advantages and disadvantages of this drive compared to other drives are highlighted. It is shown that a finite element optimum designed flux barrier rotor reluctance synchronous machine has good torque density and efficiency. The machine is current angle-controlled for maximum torque per ampere or minimum kVA. This ensures that the machine is operated reasonably close to optimal efficiency for all loads. The simple drive controller together with an optimum layout three-phase IGBT inverter forms a compact power controller for the vehicle. The calculated and measured results of the reluctance synchronous machine drive system for the electric vehicle are given. The 28 kW peak reluctance synchronous machine is used to drive the front wheels of a sedan, series hybrid electric vehicle through a differential with a gear ratio of 4.5:1. Simulation results show, amongst others, that with the single RSM drive generating a peak torque of 120 Nm, the 1445 kg vehicle accelerates from 0-80 km/h in 25.5 seconds. The maximum speed is 120 km/h
Keywords :
DC-AC power convertors; electric propulsion; electric vehicles; finite element analysis; insulated gate bipolar transistors; invertors; machine testing; machine theory; power bipolar transistors; reluctance motor drives; rotors; traction motor drives; 0 to 80 km/h; 120 km/h; 1445 kg; 25.5 s; 28 kW; compact power controller; current angle-control; efficiency; electric vehicle propulsion; finite element optimum design method; flux barrier rotor; hybrid electric vehicle; peak torque; reluctance synchronous machine drive; three-phase IGBT inverter; torque density; Drives; Finite element methods; Hybrid electric vehicles; Insulated gate bipolar transistors; Inverters; Propulsion; Rotors; Synchronous machines; Torque; Vehicle driving;
Conference_Titel :
Industrial Electronics, 1998. Proceedings. ISIE '98. IEEE International Symposium on
Conference_Location :
Pretoria
Print_ISBN :
0-7803-4756-0
DOI :
10.1109/ISIE.1998.711546