First-Order Model Based Inductance Identification With Least Square Method for High-Speed Sensorless Control of Permanent Magnet Synchronous Machines

In sensorless control of high-speed permanent magnet synchronous machines (PMSMs), online inductance identification techniques can be employed to improve the position estimation precision. The high-order inductance identification model which is affected by the flux error, the dead-time effect equiva...

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Published inIEEE transactions on power electronics Vol. 38; no. 7; pp. 8719 - 8729
Main Authors Hu, Yinfeng, Liu, Kai, Hua, Wei, Hu, Mingjin
Format Journal Article
LanguageEnglish
Published New York IEEE 01.07.2023
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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ISSN0885-8993
1941-0107
DOI10.1109/TPEL.2023.3263518

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Abstract In sensorless control of high-speed permanent magnet synchronous machines (PMSMs), online inductance identification techniques can be employed to improve the position estimation precision. The high-order inductance identification model which is affected by the flux error, the dead-time effect equivalent voltage and initial rotor position error adopted in conventional methods often face challenges including robustness and accuracy. To address this issue, this article uses a first-order discrete-time model in the estimated γδ -frame to identify the winding inductance with disturbance injection. The first-order model allows the identification to be independent of flux error, initial rotor position error, and inverter nonlinearity, thus the robustness is improved. The proposed method takes the computational delay and discrete-time nature of pulsewidth modulation into account to avoid the model error brought by low ratio of carrier-to-fundamental-frequency. Additionally, the results are estimated by least square method to solve fluctuation problem caused by measurement noise and the possible surge phenomenon. Experiments are carried out on a high-speed surface-mounted PMSM for vacuum cleaner to verify the proposed method.
AbstractList In sensorless control of high-speed permanent magnet synchronous machines (PMSMs), online inductance identification techniques can be employed to improve the position estimation precision. The high-order inductance identification model which is affected by the flux error, the dead-time effect equivalent voltage and initial rotor position error adopted in conventional methods often face challenges including robustness and accuracy. To address this issue, this article uses a first-order discrete-time model in the estimated γδ -frame to identify the winding inductance with disturbance injection. The first-order model allows the identification to be independent of flux error, initial rotor position error, and inverter nonlinearity, thus the robustness is improved. The proposed method takes the computational delay and discrete-time nature of pulsewidth modulation into account to avoid the model error brought by low ratio of carrier-to-fundamental-frequency. Additionally, the results are estimated by least square method to solve fluctuation problem caused by measurement noise and the possible surge phenomenon. Experiments are carried out on a high-speed surface-mounted PMSM for vacuum cleaner to verify the proposed method.
Author Hu, Yinfeng
Hua, Wei
Liu, Kai
Hu, Mingjin
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Snippet In sensorless control of high-speed permanent magnet synchronous machines (PMSMs), online inductance identification techniques can be employed to improve the...
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SubjectTerms First-order model
High speed
high-speed permanent magnet synchronous machines (PMSMs)
Inductance
inductance identification
least square method (LSM)
Least squares
Mathematical models
Noise measurement
Permanent magnets
Position errors
Pulse duration
Resistance
Robustness (mathematics)
Rotors
Sensorless control
Synchronous machines
Vacuum cleaners
Voltage control
Windings
Title First-Order Model Based Inductance Identification With Least Square Method for High-Speed Sensorless Control of Permanent Magnet Synchronous Machines
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