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Lowering injection amplitude in sensorless control by means of current oversampling

  • P. Landsmann
  • , J. Jung
  • , M. Kramkowski
  • , P. Stolze
  • , D. Paulus
  • , R. Kennel
  • Technical University of Munich

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

34 Scopus citations

Abstract

Sensorless control approaches for low and zero speed determine the rotor position by injecting high frequency voltage signals. Current measurement noise and quantization necessitate a minimum amount of injection amplitude, which implies an acoustic noise emission that for many applications is unacceptable. This paper proposes to sample the current with the maximum AD conversion frequency while processing the data with an FPGA. By means of a recursive least squares method and a theoretical extension, high precision current slopes are calculated from low injection voltage. Experimental results show that the injection magnitude could be reduced by factor 7 to 10 compared to standard PWM centered current measurement, but also that such weak excitation shifts the HF injection approach to a scale where normally negligible effects have to be taken into consideration.

Original languageEnglish
Title of host publication3rd IEEE International Symposium on Sensorless Control for Electrical Drives, SLED 2012
DOIs
StatePublished - 2012
Event3rd IEEE International Symposium on Sensorless Control for Electrical Drives, SLED 2012 - Milwaukee, WI, United States
Duration: 21 Sep 201222 Sep 2012

Publication series

Name3rd IEEE International Symposium on Sensorless Control for Electrical Drives, SLED 2012

Conference

Conference3rd IEEE International Symposium on Sensorless Control for Electrical Drives, SLED 2012
Country/TerritoryUnited States
CityMilwaukee, WI
Period21/09/1222/09/12

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