In this paper, a model for the dynamic simulation of permanent magnet synchronous motors (PMSM) is presented. The model takes into account the effects of magnetic saturation, harmonics and permanent magnet (PM) temperature variation. The proposed solution is designed with the objective of providing smooth transitions of the physical quantities as a function of the state variables, and to comply with the concept of energy conservation. This is achieved starting from the map of the magnetic coenergy of the motor, obtained with Finite Element (FE) analysis as a function of four variables: d-axis current, q-axis current, rotor angle, and PM temperature. The coenergy map is then interpolated via four-dimensional cubic spline interpolation, which is used to retrieve all quantities required for the model, namely flux linkage, incremental inductances and cogging torque. In particular, these quantities are described as functions obtained by differentiating the polynomials defining the coenergy map interpolation. In conclusion, examples of the results obtainable with the proposed model are shown, highlighting both the different terms that compose the voltage components and the importance of taking into account the effect of PM temperature.

Variable-Temperature PMSM Dynamic Model Based on Spline Interpolation of Coenergy Map / Capitanio, A., Nuzzo, S., Sala, G., Barater, D., Franceschini, G.. - 2025(2025), pp. 1-6. (2025 IEEE Workshop on Electrical Machines Design, Control and Diagnosis, WEMDCD 2025 La Valletta, Malta 2025) [10.1109/wemdcd61816.2025.11014201].

Variable-Temperature PMSM Dynamic Model Based on Spline Interpolation of Coenergy Map

Capitanio, Alessandro;Nuzzo, Stefano;Barater, Davide;Franceschini, Giovanni
2025

Abstract

In this paper, a model for the dynamic simulation of permanent magnet synchronous motors (PMSM) is presented. The model takes into account the effects of magnetic saturation, harmonics and permanent magnet (PM) temperature variation. The proposed solution is designed with the objective of providing smooth transitions of the physical quantities as a function of the state variables, and to comply with the concept of energy conservation. This is achieved starting from the map of the magnetic coenergy of the motor, obtained with Finite Element (FE) analysis as a function of four variables: d-axis current, q-axis current, rotor angle, and PM temperature. The coenergy map is then interpolated via four-dimensional cubic spline interpolation, which is used to retrieve all quantities required for the model, namely flux linkage, incremental inductances and cogging torque. In particular, these quantities are described as functions obtained by differentiating the polynomials defining the coenergy map interpolation. In conclusion, examples of the results obtainable with the proposed model are shown, highlighting both the different terms that compose the voltage components and the importance of taking into account the effect of PM temperature.
2025
no
Inglese
2025 IEEE Workshop on Electrical Machines Design, Control and Diagnosis, WEMDCD 2025
La Valletta, Malta
2025
Proceedings of the IEEE Workshop on Electrical Machines Design, Control and Diagnosis
2025
1
6
Institute of Electrical and Electronics Engineers Inc.
345 E 47TH ST, NEW YORK, NY 10017 USA
Coenergy; Cubic Spline; Magnetic Model
Capitanio, Alessandro; Nuzzo, Stefano; Sala, Giacomo; Barater, Davide; Franceschini, Giovanni
Atti di CONVEGNO::Relazione in Atti di Convegno
273
5
Variable-Temperature PMSM Dynamic Model Based on Spline Interpolation of Coenergy Map / Capitanio, A., Nuzzo, S., Sala, G., Barater, D., Franceschini, G.. - 2025(2025), pp. 1-6. (2025 IEEE Workshop on Electrical Machines Design, Control and Diagnosis, WEMDCD 2025 La Valletta, Malta 2025) [10.1109/wemdcd61816.2025.11014201].
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info:eu-repo/semantics/conferenceObject
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/1408879
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