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  5. A comprehensive review of modelling methods for multi-three-phase permanent magnet synchronous machines

A comprehensive review of modelling methods for multi-three-phase permanent magnet synchronous machines

Publication date
2026-05-13
Document type
Sammelbandbeitrag oder Buchkapitel
Author
Surani, Nayan  
Baum, Lukas  
Göbel, Torben  
Gómez Anccas, Edgar Diego  
Grumm, Florian  
Schulz, Detlef  
Organisational unit
Elektrische Energiesysteme  
DOI
10.24405/22073
URI
https://openhsu.ub.hsu-hh.de/handle/10.24405/22073
Project
B4 Innovative Hydrogen Propulsion System  
Publisher
Universitätsbibliothek der HSU/UniBw H
Book title
Innovative Technologien für erneuerbare Energien, Elektromobilität und Netzinfrastrukturen im Kontext der Energiewende
First page
151
Last page
156
Is part of
https://openhsu.ub.hsu-hh.de/handle/10.24405/22061
Part of the university bibliography
✅
File(s)
openHSU_22073.pdf (620.81 KB)
Additional Information
Language
English
Keyword
Multi-Three-Phase PMSM
Modelling methods
VSD approach
MS model
GD model
Voltage-behind-reluctance method
Abstract
In recent years, the multiphase machine has gained increased interest due to its potential advantages. Especially in the aircraft industry, as redundancy is very important for safety, which can be achieved by using a multiphase machine. The multiphase machine not only ensures continued safe operation in the event of a fault but also requires lower phase currents for the given power compared to a three-phase machine. The modelling of the machine is important to evaluate the behaviour in simulation and in real-time for the project BeHyPSy. This paper presents different modelling methods of multi-three-phase PMSM, such as Vector space decomposition, General Decoupling, Multi-stator, Voltage-behind-reluctance Model. All the methods have their own advantages and limitations. The research has investigated several machine modelling techniques and concluded that, among all the approaches, the Voltage-behind-reluctance method is the most suitable for the BeHyPSy project, as it accurately represents internal machine phenomena and enables the simulation of single-phase and multiphase faults.
Version
Published version
Access right on openHSU
Open access

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