DocumentCode
1209458
Title
A predictive model for the permeability tensor of magnetized heterogeneous materials
Author
Quéffélec, Patrick ; Bariou, David ; Gelin, Philippe
Author_Institution
Lab. of Electron. & Syst. of Telecommun., Univ. of Brest, France
Volume
41
Issue
1
fYear
2005
Firstpage
17
Lastpage
23
Abstract
This paper describes a mathematical model enabling the calculation of the effective permeability tensor of heterogeneous magnetic materials set in various magnetization states. The theoretical approach we propose permits to predict the microwave behavior of unsaturated magnetic loaded composites as well as those of unsaturated polycrystalline ferrites. The model gives all the complex components of the permeability tensor in a single calculation phase whatever the magnetization state of the material is. This is useful for the computer-aided design of microwave magnetic devices. The calculation of the effective permeability tensor is carried out from a limited number of parameters: saturation magnetization, anisotropy field, damping factor, external dc field strength, concentration, and shape of the magnetic particles or domains. The model is predictive in the way that the magnetization state of the material is determined from the strength of the external dc magnetic field applied on the material.
Keywords
inhomogeneous media; magnetic anisotropy; magnetic hysteresis; magnetic materials; magnetic microwave devices; magnetic permeability; tensors; anisotropy field; damping factor; external dc field strength; magnetic anisotropy; magnetic domains; magnetic hysteresis; magnetic particles; magnetization states; magnetized heterogeneous materials; microwave behavior; microwave magnetic devices; nonhomogeneous media; permeability tensor; predictive model; saturation magnetization; unsaturated magnetic loaded composites; unsaturated polycrystalline ferrites; Ferrites; Magnetic anisotropy; Magnetic materials; Mathematical model; Microwave devices; Permeability; Perpendicular magnetic anisotropy; Predictive models; Saturation magnetization; Tensile stress;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2004.837755
Filename
1381502
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