DocumentCode :
1788388
Title :
Finite reluctance approach: A systematic method for the construction of magnetic network-based dynamic models of electrical machines
Author :
Bruzzese, Claudio ; Zito, Domenico ; Tessarolo, Alberto
Author_Institution :
Dept. of Astronaut., Electr., & Energy Eng., Univ. of Rome - Sapienza, Rome, Italy
fYear :
2014
fDate :
18-19 Sept. 2014
Firstpage :
1
Lastpage :
6
Abstract :
The finite reluctance approach is based on a simple synergy between a basic magnetic domain decomposition rule and the voltage balance at the terminals of any winding acting in the domain. The finite reluctance approach is thought as a tool for fast dynamic simulations of any kind of machine, but it is particularly adapt for irregular flux geometries as in fractional-slot surface-mounted permanent magnet machines with large slots and high slot flux leakages, for which only the finite element method has found good usage. This approach is based on the definition of a complementary mesh interlaced with the reluctance mesh, on the concept of material cell, and on unique rules to carry out both reluctances and magneto-motive forces. At this scope, definitions of mesh nodes, co-nodes, and auxiliary nodes are shown. The iron saturation can be easily taken in account, as well as motion effects. The circuit flux linkages are elected as state variables for integration, and they are directly linked to the loop fluxes in the magnetic network. The finite reluctance approach has been applied in this paper for dynamic modeling of an inverter-fed permanent-magnet linear synchronous motor.
Keywords :
finite element analysis; invertors; linear synchronous motors; permanent magnet motors; circuit flux linkages; electrical machines; fast dynamic simulations; finite element method; finite reluctance approach; fractional-slot surface-mounted permanent magnet machines; inverter-fed permanent-magnet linear synchronous motor; iron saturation; irregular flux geometries; magnetic network-based dynamic model construction; magneto-motive forces; systematic method; Dynamic model; dynamic simulation; linear machine; magnetic network; permanent magnet; reluctance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
AEIT Annual Conference - From Research to Industry: The Need for a More Effective Technology Transfer (AEIT), 2014
Conference_Location :
Trieste
Print_ISBN :
978-8-8872-3724-5
Type :
conf
DOI :
10.1109/AEIT.2014.7002054
Filename :
7002054
Link To Document :
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