Title :
Dynamic field modelling of torque and radial forces in vector-controlled induction machines with bearing relief
Author :
Amirulddin, U. A Ungku ; Asher, G.M. ; Sewell, P. ; Bradley, K.J.
Author_Institution :
Sch. of Electr. & Electron. Eng., Univ. of Nottingham, UK
fDate :
7/8/2005 12:00:00 AM
Abstract :
The paper addresses the bearingless induction motor based on the concept of dual-pole windings, one controlling the motor torque and the other the generated radial forces. Such machines have been investigated experimentally in the past. The paper presents a simulation model capable of investigating the effect of induction-machine design on the generation and control of the radial force. The simulation is based on the dynamic reluctance-mesh field model embedded in vector control systems for the decoupled control of torque, flux and radial force. In the paper, the rotor is constrained by a mechanical bearing so that the radial force is used to cancel the rotor weight to effect ´bearing relief´. The paper summarises the modelling method, investigates the radial force production in both cage and wound rotor machines, and introduces a mixed field orientation method for the decoupled control of the torque and radial forces. Simulations are undertaken showing good generation of radial force under zero speed, acceleration and transient load conditions.
Keywords :
electric machine analysis computing; induction motors; machine bearings; machine vector control; magnetic flux; rotors; torque control; bearingless induction motor; decoupled control; dual-pole windings; dynamic field modelling; dynamic reluctance-mesh field model; field orientation method; flux control; induction-machine design; mechanical bearing; motor torque control; radial force control; simulation model; transient load conditions; vector control systems; vector-controlled induction machines; wound rotor machines;
Journal_Title :
Electric Power Applications, IEE Proceedings -
DOI :
10.1049/ip-epa:20045233