DocumentCode :
1329012
Title :
Characteristics of Fe-Si-B-P-Cu Nanocrystalline Soft Magnetic Alloy Powders With High Bs
Author :
Chiba, M. ; Urata, A. ; Matsumoto, Hirokazu ; Yoshida, Sigeru ; Makino, Akihiro
Author_Institution :
NEC TOKIN Corp., Miyagi, Japan
Volume :
47
Issue :
10
fYear :
2011
Firstpage :
2845
Lastpage :
2847
Abstract :
Nanocrystalline soft magnetic alloy powders produced by heat treating amorphous powders are expected to improve properties and miniaturize dust cores because of their low coercive force Hc and high saturation magnetic flux density Bs. By water atomization process, we successfully obtained quenched Fe-Si-B-P-Cu alloy powders with spherical particle shape. The obtained powders have different average particle sizes of 2.0, 3.0, 5.0, and 8.5 μm. After annealing at 723 K, the as-quenched alloy powders are crystallized and Bs of the nanocrystalline alloy powders with Fe83.3Si4B8P4Cu0.7 and Fe84.8Si2B10P2Cu1.2 exhibit high Bs of 1.72 and 1.76 T, respectively. Core loss characteristics of the dust cores are found to be dependent on amorphous stability of the as-quenched powders. Thus, the Fe83.3Si4B8P4Cu0.7 nanocrystalline alloy powder with an average particle size of 3.0 μm exhibits the best core loss of 1461 kW/m3 (Bm = 50 mT, f=300 kHz).
Keywords :
amorphous magnetic materials; annealing; boron alloys; coercive force; copper alloys; crystallisation; iron alloys; magnetic flux; magnetic particles; nanofabrication; nanomagnetics; nanoparticles; particle size; phosphorus alloys; powder cores; quenching (thermal); silicon alloys; soft magnetic materials; Fe83.3Si4B8P4Cu0.7; Fe84.8Si2B10P2Cu1.2; annealing; atomization process; coercive force; core loss property; crystallization; heat treating amorphous powders; high saturation magnetic flux density; magnetic flux density 1.72 T; magnetic flux density 1.76 T; miniaturize dust cores; nanocrystalline soft magnetic alloy powders; particle sizes; quenching; spherical particle shape; temperature 723 K; Amorphous magnetic materials; Core loss; Magnetic cores; Metals; Powders; Saturation magnetization; Thermal stability; Fe-Si-B-P-Cu alloy; high saturation magnetic flux density; nanocrystal; soft magnetic powder;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2011.2158518
Filename :
6027580
Link To Document :
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