Rotor temperature estimation of squirrel-cage induction motors by means of a combined scheme of parameter estimation and a thermal equivalent model

被引:75
作者
Kral, C [1 ]
Habetler, TG
Harley, RG
Pirker, F
Pascoli, G
Oberguggenberger, H
Fenz, CJM
机构
[1] Georgia Inst Technol, Sch Elect & Comp Engn, Atlanta, GA 30332 USA
[2] Arsenal Res, A-1030 Vienna, Austria
关键词
induction machine; rotor cage; temperature estimation; thermal model;
D O I
10.1109/TIA.2004.830759
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper deals with a rotor temperature estimation scheme for fan-cooled ' mains-fed squirrel-cage induction motors. The proposed technique combines a rotor resistance estimation method with a thermal equivalent circuit. Usually, rotor resistance estimation works quite well under rated load conditions. By contrast, if the motor is slightly loaded, rotor resistance estimation becomes inaccurate due to the small slip. Therefore, rotor temperature estimation under low-load conditions may be estimated by a thermal equivalent model. In order to determine the rotor resistance and, thus, rotor temperature accurately, several machine parameters have to be obtained in advance. Load tests provide the-leakage reactance and the iron losses of the induct machine. The stator resistance has to be measured separately. The parameters of the thermal equivalent model are a thermal resistance and a thermal capacitance. These parameters are derived from a heating test, where the reference temperature is provided from the parameter model in the time domain. This lumped thermal parameter model is based on the assumption that the total rotor temperature increase is caused by the total sum of the losses in the induction machine. Measuring results of a 1.5-kW and an 18.5-kW four-pole lowvoltage motor and a 210-kW four-pole high-voltage motor are presented and compared.
引用
收藏
页码:1049 / 1057
页数:9
相关论文
共 15 条
[1]  
[Anonymous], C REC IEEE IAS ANN M
[2]  
Bates J. J., 1956, PROCEEDING IEE, V103, P471
[3]   Induction motors thermal monitoring by means of rotor resistance identification [J].
Beguenane, R ;
Benbouzid, MEH .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 1999, 14 (03) :566-570
[4]   Simplified thermal model for variable-speed self-cooled industrial induction motor [J].
Boglietti, A ;
Cavagnino, A ;
Lazzari, M ;
Pastorelli, M .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2003, 39 (04) :945-952
[5]   IN-SITU DETERMINATION OF THERMAL COEFFICIENTS FOR ELECTRICAL MACHINES [J].
BOUSBAINE, A ;
MCCORMICK, M ;
LOW, WF .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 1995, 10 (03) :385-391
[6]   EMPIRICAL THERMAL-MODEL FOR INVERTER-DRIVEN CAGE INDUCTION MACHINES [J].
BOYS, JT ;
MILES, MJ .
IEE PROCEEDINGS-ELECTRIC POWER APPLICATIONS, 1994, 141 (06) :360-372
[7]   Instrumentation, testing and analysis of electric machine rotor steady-state heating [J].
Dymond, J ;
Ong, R ;
Stranges, N .
INDUSTRY APPLICATIONS SOCIETY 48TH ANNUAL PETROLEUM AND CHEMICAL INDUSTRY CONFERENCE, 2001, :297-303
[8]   MOTOR TEMPERATURE ESTIMATION INCORPORATING DYNAMIC ROTOR IMPEDANCE [J].
ELTOM, AH ;
MOHARARI, NS .
IEEE TRANSACTIONS ON ENERGY CONVERSION, 1991, 6 (01) :107-113
[9]  
IBTIOUEN R, 2001, P IEEE INT EL MACH D, P505
[10]  
Kleinrath H., 1993, Elektrotechnik und Informationstechnik, V110, P68