DocumentCode :
3602782
Title :
Effect of Organic Fuel on High-Frequency Magnetic Properties of Fe–Al2O3 Composite Powders Synthesized by a Combustion Method
Author :
Donchul Choi ; Moosung Choi ; Jongryoul Kim
Author_Institution :
Dept. of Metall. & Mater. Eng., Hanyang Univ., Ansan, South Korea
Volume :
51
Issue :
11
fYear :
2015
Firstpage :
1
Lastpage :
4
Abstract :
Nanocrystalline Fe-Al2O3 soft-magnetic composite powders were synthesized by a conventional combustion method followed by a H2 reduction process. In this paper, we analyzed the effect of the types and compositions of organic fuel on the dispersive magnetic properties of the composite powders for improving the soft-magnetic properties. To understand the properties, the microstructural and thermal characterization of as-synthesized oxide powders and their reduced powders were analyzed by an X-ray diffractor, a scanning electron microscope, and a thermogravimetric and differential thermal analyzer. In addition, the high-frequency dispersive magnetic simulation using the Landau-Lifshitz-Gilbert (LLG) equation and extended Maxwell-Garnet effective medium theory mixing rule was carried out. As a result, the microstructural and thermal analyses showed that the high-frequency dispersive magnetic behaviors of nanocrystalline Fe-Al2O3 composite powders were dependent on the types and the compositions of fuel by controlling the released heat amount during the combustion redox reaction. In particular, a relative real permeability (u´y) of 3.6 at 1 GHz was obtained in Fe-Al2O3 (Fe:Al = 95:5, wt%) composite powders combusted by a mixed fuel composed of a 50 mol% glycine and a 50 mol% urea.
Keywords :
X-ray diffraction; aluminium compounds; combustion synthesis; crystal microstructure; differential thermal analysis; high-frequency effects; iron; magnetic particles; magnetic permeability; nanocomposites; nanofabrication; nanomagnetics; nanoparticles; oxidation; particle reinforced composites; reduction (chemical); scanning electron microscopy; soft magnetic materials; Fe-Al2O3; Landau-Lifshitz-Gilbert equation; X-ray diffraction; combustion method; combustion redox reaction; differential thermal analysis; extended Maxwell-Garnet effective medium theory mixing rule; glycine-urea mixed fuel; heat release; high-frequency dispersive magnetic simulation; high-frequency magnetic properties; hydrogen reduction process; microstructural property; nanocrystalline soft-magnetic composite powders; organic fuel effect; relative real permeability; scanning electron microscopy; thermal property; thermogravimetric analysis; Combustion; Fuels; Iron; Magnetic properties; Powders; Soft magnetic materials; Temperature measurement; Combustion; Fe-Al2O3 composite powder; Fe???Al2O3 composite powders; combustion; high-frequency soft magnetic property; high-frequency soft-magnetic property; soft magnetic composite; soft-magnetic composite;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2015.2441115
Filename :
7117416
Link To Document :
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