DocumentCode :
1062066
Title :
Magnetic properties of Fe-6.4 wt.%Si ribbons
Author :
Altoé, M. V P ; Lancarotte, M.S. ; Cohen, R. ; Missell, F.P. ; Monteiro, W.A. ; Degauque, J. ; Fagot, M.
Author_Institution :
Inst. de Fisica, Sao Paulo Univ., Brazil
Volume :
27
Issue :
6
fYear :
1991
fDate :
11/1/1991 12:00:00 AM
Firstpage :
5325
Lastpage :
5327
Abstract :
Thin Fe-6.4wt.%Si ribbons were produced by melt spinning. High-temperature recrystallizations, performed at 1025°C in a hydrogen atmosphere, were found to produce the lowest Hc values (19 A/m). Further agings were carried out at 50°C intervals in the range 400-700°C to optimize the magnetic properties. For all ribbons, Hc (60 Hz and DC), the maximum permeability, the saturation magnetostriction, and the effective anisotropy constant were measured. In general, the agings did little to improve the magnetic properties, and those around 600°C resulted in their deterioration. Extensive transmission-electron-microscope investigations of the ribbons indicate that the dendritic structure of the as-cast material disappears after recrystallization, leading to a more uniform distribution of Si as well as a more homogeneous ordering. The 600°C aging results in a marked anisotropy in the B2 antiphase boundaries and the growth of oxide particles, which lead to a deterioration of the magnetic properties
Keywords :
ageing; antiphase boundaries; coercive force; dendritic structure; ferromagnetic properties of substances; iron alloys; magnetic anisotropy; magnetic permeability; magnetostriction; melt spinning; rapid solidification; recrystallisation annealing; silicon alloys; transmission electron microscope examination of materials; 400 to 700 C; Fe-Si ribbons; agings; antiphase boundaries; as-cast material; coercive field; dendritic structure; effective anisotropy constant; electric steel; growth of oxide particles; magnetic properties; maximum permeability; melt spinning; microstructure; rapid solidification; saturation magnetostriction; transmission-electron-microscope investigations; Aging; Anisotropic magnetoresistance; Atmosphere; Hydrogen; Lead compounds; Magnetic materials; Magnetic properties; Magnetostriction; Permeability measurement; Spinning;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.278827
Filename :
278827
Link To Document :
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