DocumentCode
721901
Title
Upper limit for the simultaneous existence of high Bs and low Hc in nanocrystalline FeCoSiBPCu alloys
Author
Zhang, Y. ; Sharma, P. ; Makino, A.
Author_Institution
Cooperative R&D Center for Adv. Mater., Tohoku Univ., Sendai, Japan
fYear
2015
fDate
11-15 May 2015
Firstpage
1
Lastpage
1
Abstract
Recently, nanocrystalline Fe-Si-B-P-Cu soft magnetic alloys, NANOMET® with high Fe contents of above 83 at% have attracted much attention as a future core material for high performance magnetic applications because of their high magnetic flux density (Bs ~ 1.80 T), low coercivity (Hc), significantly low core loss (W) and low materials cost [1]-[3]. Small addition of Co (~ 4 to 5 at%) is shown to be effective in producing wide ribbons for commercial applications (such as transformers, motors etc.). High concentrations of Fe and Co (very close to the limit for the formation of amorphous state) in the alloys were used to obtain high Bs (~ 1.84 T) [2]. Simultaneous existence of Bs similar to oriented steel and Hc lower than it are the driving factors to further increase in magnetic elements in the alloy. Generally it is believed that the amorphous structure (a broad halo in X-ray diffraction curve) of as quenched ribbons is very important for achieving a uniform nano-crystalline structure with low coercivity (Hc) after optimum heat treatment. We have noticed that the nanocrystalline Fe81.2Co4Si0.5B9.5P4Cu0.8 alloy shows low Hc <; 10 A/m, but a minor increase in Co from 4 to 5 at.% (Fe81.3Co5Si0.5B9.5P4Cu0.7) results in a drastic increase in Hc to ~ 60 A/m. In terms of structure both the alloys in as quenched state exhibit similar X-ray diffraction patterns (i.e. X-ray amorphous). The B of this alloy approaches to ~ 1.9 T.
Keywords
X-ray diffraction; boron alloys; cobalt alloys; coercive force; copper alloys; iron alloys; nanostructured materials; phosphorus alloys; quenching (thermal); silicon alloys; soft magnetic materials; FeCoSiBPCu; X-ray diffraction curve; X-ray diffraction patterns; amorphous structure; coercivity; heat treatment; high magnetic flux density; high performance magnetic applications; magnetic elements; nanocrystalline soft magnetic alloys; nanocrystalline structure; oriented steel; quenched ribbons; quenched state; Annealing; Grain size; Magnetic cores; Metals; Nanostructures; Soft magnetic materials; X-ray diffraction;
fLanguage
English
Publisher
ieee
Conference_Titel
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location
Beijing
Print_ISBN
978-1-4799-7321-7
Type
conf
DOI
10.1109/INTMAG.2015.7157158
Filename
7157158
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