LAPSE:2023.22126
Published Article

LAPSE:2023.22126
Effective Permeability of Multi Air Gap Ferrite Core 3-Phase Medium Frequency Transformer in Isolated DC-DC Converters
March 23, 2023
Abstract
The magnetizing inductance of the medium frequency transformer (MFT) impacts the performance of the isolated dc-dc power converters. The ferrite material is considered for high power transformers but it requires an assembly of type “I” cores resulting in a multi air gap structure of the magnetic core. The authors claim that the multiple air gaps are randomly distributed and that the average air gap length is unpredictable at the industrial design stage. As a consequence, the required effective magnetic permeability and the magnetizing inductance are difficult to achieve within reasonable error margins. This article presents the measurements of the equivalent B(H) and the equivalent magnetic permeability of two three-phase MFT prototypes. The measured equivalent B(H) is used in an FEM simulation and compared against a no load test of a 100 kW isolated dc-dc converter showing a good fit within a 10% error. Further analysis leads to the demonstration that the equivalent magnetic permeability and the average air gap length are nonlinear functions of the number of air gaps. The proposed exponential scaling function enables rapid estimation of the magnetizing inductance based on the ferrite material datasheet only.
The magnetizing inductance of the medium frequency transformer (MFT) impacts the performance of the isolated dc-dc power converters. The ferrite material is considered for high power transformers but it requires an assembly of type “I” cores resulting in a multi air gap structure of the magnetic core. The authors claim that the multiple air gaps are randomly distributed and that the average air gap length is unpredictable at the industrial design stage. As a consequence, the required effective magnetic permeability and the magnetizing inductance are difficult to achieve within reasonable error margins. This article presents the measurements of the equivalent B(H) and the equivalent magnetic permeability of two three-phase MFT prototypes. The measured equivalent B(H) is used in an FEM simulation and compared against a no load test of a 100 kW isolated dc-dc converter showing a good fit within a 10% error. Further analysis leads to the demonstration that the equivalent magnetic permeability and the average air gap length are nonlinear functions of the number of air gaps. The proposed exponential scaling function enables rapid estimation of the magnetizing inductance based on the ferrite material datasheet only.
Record ID
Keywords
average air gap length, dc-dc power converters, gapped magnetic core, magnetic permeability, magnetizing inductance, medium frequency transformer
Subject
Suggested Citation
Dworakowski P, Wilk A, Michna M, Lefebvre B, Sixdenier F, Mermet-Guyennet M. Effective Permeability of Multi Air Gap Ferrite Core 3-Phase Medium Frequency Transformer in Isolated DC-DC Converters. (2023). LAPSE:2023.22126
Author Affiliations
Dworakowski P: Power Electronics & Converters, SuperGrid Institute, 69100 Villeurbanne, France [ORCID]
Wilk A: Faculty of Electrical and Control Engineering, Gdańsk University of Technology, 80-233 Gdansk, Poland [ORCID]
Michna M: Faculty of Electrical and Control Engineering, Gdańsk University of Technology, 80-233 Gdansk, Poland [ORCID]
Lefebvre B: Power Electronics & Converters, SuperGrid Institute, 69100 Villeurbanne, France
Sixdenier F: Univ Lyon, Université Claude Bernard Lyon 1, INSA Lyon, ECLyon, CNRS, Ampère, 69100 Villeurbanne, France [ORCID]
Mermet-Guyennet M: Power Electronics & Converters, SuperGrid Institute, 69100 Villeurbanne, France
Wilk A: Faculty of Electrical and Control Engineering, Gdańsk University of Technology, 80-233 Gdansk, Poland [ORCID]
Michna M: Faculty of Electrical and Control Engineering, Gdańsk University of Technology, 80-233 Gdansk, Poland [ORCID]
Lefebvre B: Power Electronics & Converters, SuperGrid Institute, 69100 Villeurbanne, France
Sixdenier F: Univ Lyon, Université Claude Bernard Lyon 1, INSA Lyon, ECLyon, CNRS, Ampère, 69100 Villeurbanne, France [ORCID]
Mermet-Guyennet M: Power Electronics & Converters, SuperGrid Institute, 69100 Villeurbanne, France
Journal Name
Energies
Volume
13
Issue
6
Article Number
E1352
Year
2020
Publication Date
2020-03-14
ISSN
1996-1073
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PII: en13061352, Publication Type: Journal Article
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LAPSE:2023.22126
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https://doi.org/10.3390/en13061352
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Mar 23, 2023
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