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
Link To Document :
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