DocumentCode :
2720141
Title :
A DSP based torque meter for induction motors
Author :
De Carvalho, Fabiano Valias ; Pinto, João Onofre Pereira ; Da Silva, Luiz Eduardso Borges ; Bose, Bimal K. ; Torres, Germano Lambert
Author_Institution :
Inst. Nacional de Telecomunicacoes, INATEL, Santa Rita Do Sapucai, Brazil
Volume :
1
fYear :
2003
fDate :
2-6 Nov. 2003
Firstpage :
414
Abstract :
This work describes the steps to implement a torque meter for three phases induction motors, based on stator voltage and machine current measurement. The strategy is based on stator flux synthesis through Programmable Cascaded Low-Pass Filters (PCLPF). The electromagnetic torque estimation is processed by a DSP microprocessor in real time. The PCLPF filter outlines the problem of necessary numeric integration to calculate the stator flux starting from the samples of stator voltage and current. The Programmable Cascaded Low-Pass Filter is implemented using recurrent neural network (RNN-PCLPF) trained by an algorithm based on Kalman filter. The DSP based implementation of a torque meter results in an equipment with the same precision when comparing with torque meters based on torsion of metallic axes, with known elastic constant and strain gauges.
Keywords :
Kalman filters; digital signal processing chips; induction motors; low-pass filters; programmable filters; recurrent neural nets; torque measurement; torquemeters; DSP microprocessor; Kalman filter; digital signal processing; elastic constant; electromagnetic torque estimation; machine current measurement; numeric integration; programmable cascaded low pass filters; stator flux synthesis; stator voltage measurement; strain gauges; three phase induction motors; torque meter; Capacitive sensors; Current measurement; Digital signal processing; Induction motors; Low pass filters; Microprocessors; Recurrent neural networks; Stators; Torque; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Industrial Electronics Society, 2003. IECON '03. The 29th Annual Conference of the IEEE
Print_ISBN :
0-7803-7906-3
Type :
conf
DOI :
10.1109/IECON.2003.1280016
Filename :
1280016
Link To Document :
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