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
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