Comparison of Different Offline MTPA Trajectory Estimation Methods

Authors

Jernej Černelič
University of Maribor, Faculty of Electrical Engineering and Computer Science
https://orcid.org/0000-0002-0401-371X
Martin Petrun
University of Maribor, Faculty of Electrical Engineering and Computer Science
https://orcid.org/0000-0001-9134-5802

Synopsis

The main goal of this paper was to analyse and compare different offline Maximum-Torque Per Ampere (MTPA) trajectory estimation methods for Interior Permanent Magnet Synchronous Machines (IPMSMs). The analysis was performed based on Finite Element Analysis (FEA) data of IPMSMs. The obtained results show that despite neglecting all the non-linearities, the analytical MTPA trajectory calculation with constant IPMSM parameters can model the MTPA trajectory with adequately small difference when compared to optimization-based calculation. Consequently, the MTPA trajectory calculation was further simplified with a piece-wise linear approximation of the trajectory, resulting in simpler MTPA reference calculation within the controller and adequately small deviations from optimal MTPA operating points.

Author Biographies

Jernej Černelič, University of Maribor, Faculty of Electrical Engineering and Computer Science

Maribor, Slovenia. E-mail: jernej.cernelic@um.si

Martin Petrun, University of Maribor, Faculty of Electrical Engineering and Computer Science

Martin Petrun received his BSc and PhD degrees in electrical engineering from the University of Maribor, Maribor, Slovenia, in 2010 and 2014, respectively. He is currently working as a researcher and an associate professor at the University of Maribor. His current research interests include modelling of dynamic phenomena inside soft magnetic materials as well as modelling and control of electrical and electromechanical converters and power electronics.

Maribor, Slovenia. E-mail: martin.petrun@um.si

Downloads

Published

May 14, 2025

How to Cite

Comparison of Different Offline MTPA Trajectory Estimation Methods. (2025). In XXVIII. Symposium Electromagnetic Phenomena in Nonlinear Circuits (EPNC 2024): Conference Proceedings (pp. 301-306). University of Maribor Press. https://press.um.si/index.php/ump/catalog/book/963/chapter/497