DocumentCode
767500
Title
Analysis of Optimum Sheet Resistance for Integrated Electromagnetic Noise Suppressors
Author
Maruta, Kaori ; Sugawara, Masaya ; Shimada, Yutaka ; Yamaguchi, Masahiro
Author_Institution
Graduate Sch. of Eng., Tohoku Univ., Sendai
Volume
42
Issue
10
fYear
2006
Firstpage
3377
Lastpage
3379
Abstract
This paper discusses the physical nature of the optimum sheet resistance of noise suppression sheets/films based on three-dimensional (3-D) finite-element method (FEM) electromagnetic field simulation. Co-Al-O films with sheet resistance of10-1-105 Omega/square were deposited on top of a micro strip-line. It was revealed that inline loss generation was maximized with the film´s sheet resistance of nominally 100 Omega/square, which explains well the earlier experimental results. The ratio of loss generation to the input power reached 0.96 in the experimental results and 0.97 in the simulation results at 6 GHz. A certain balance of eddy current generation and a material resistivity allowed the Co-Al-O film to dissipate the inline noise power effectively. The simulation results also showed that the inline power was not radiated from the Co-Al-O film but was lost in the film. Ferromagnetic resonance losses were found around 1-2 GHz combined with the eddy current losses. These two electric and magnetic losses enhanced total inline loss generation effectively
Keywords
aluminium compounds; cobalt compounds; eddy current losses; electromagnetic interference; ferromagnetic resonance; finite element analysis; interference suppression; magnetic thin films; 3D finite-element method; 6 GHz; Co-Al-O; complex permeability; eddy current losses; electric loss; electromagnetic compatibility; electromagnetic field simulation; electromagnetic noise suppressor; ferromagnetic resonance; inline loss generation; integrated electromagnetic noise suppressors; magnetic loss; magnetic thin film; material resistivity; microstrip line; sheet resistance; Conductivity; Eddy currents; Electromagnetic analysis; Electromagnetic fields; Electromagnetic interference; Finite element methods; Magnetic films; Magnetic resonance; Power generation; Sheet materials; Complex permeability; eddy current losses; electromagnetic compatibility (EMC); electromagnetic noise suppressor; ferromagnetic resonance (FMR); magnetic thin film; sheet resistance;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2006.879443
Filename
1704632
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