DocumentCode :
1207683
Title :
Empirical thermal model for inverter-driven cage induction machines
Author :
Boys, J.T. ; Miles, M.J.
Author_Institution :
Dept. of Electr. & Electron. Eng., Auckland Univ., New Zealand
Volume :
141
Issue :
6
fYear :
1994
fDate :
11/1/1994 12:00:00 AM
Firstpage :
360
Lastpage :
372
Abstract :
The paper describes an empirical thermal model which provides an estimate of stator- and rotor-conductor temperatures in an inverter-driven cage induction machine under both transient and steady-state conditions (of heating and cooling), and under constant and variable flux control. The model is based on a widely used thermal-torque derating for inverter-driven induction machines, and features a single frequency-dependent thermal resistance and time constant for each winding. It is easily implemented in real time for online thermal protection and compensation for winding-resistance variation. The technique is demonstrated on two 7.5 kW inverter drives to give temperature estimates to within 10 deg C for both transient and steady-state operation. This accuracy is shown to be sufficient to maintain torque output to within 0.01 p.u. in both voltage-forced and current-forced inverter drives. The model can be generalised for a wide range of machine sizes, without the need for specific physical details, by assuming that induction machines are constructed of similar materials, and have similar insulation thermal limits
Keywords :
induction motor drives; invertors; machine control; machine theory; magnetic flux; magnetic variables control; rotors; squirrel cage motors; stators; thermal analysis; torque; transients; 7.5 kW; compensation; constant flux control; current-forced inverter drive; inverter-driven cage induction machines; rotor-conductor temperature; single frequency-dependent thermal resistance; stator-conductor temperature; steady-state conditions; thermal model; thermal-torque derating; time constant; transient conditions; variable flux control; voltage-forced inverter drive;
fLanguage :
English
Journal_Title :
Electric Power Applications, IEE Proceedings -
Publisher :
iet
ISSN :
1350-2352
Type :
jour
DOI :
10.1049/ip-epa:19941462
Filename :
336339
Link To Document :
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