DocumentCode :
721833
Title :
Large converse magnetoelectric properties without bias in composite of rosen-type piezoelectric transformer and magnetization-graded ferromagnetic material
Author :
Yang, C. ; Li, P. ; Wen, Y. ; Yang, A. ; Wang, D. ; Zhang, F. ; Zhang, J.
Author_Institution :
Coll. of Optoelectron. Eng., Chongqing Univ., Chongqing, China
fYear :
2015
fDate :
11-15 May 2015
Firstpage :
1
Lastpage :
1
Abstract :
In this paper, we designed a magnetoelectric composite by bonding the graded-magnetostrictive layers of FeCuNbSiB/FeNi-FACE on the output part of the Rosen-type transformer, in which a much higher self-biased CME coefficient is obtained. Due to the different magnetic characteristics of nanocrystalline foil FeCuNbSiB and FeNi-FACE (such as permeability, saturation magnetization and magnetostriction), the FeCuNbSiB/FeNi-FACE layer exhibits a build-in magnetic bias field. When the ac voltage is applied on the input part of the transformer, a large strain is mechanically transferred to the graded-magnetostrictive layers due to the stress concentration effects at full-wavelength resonance frequency. Therefore, the large strain in the output part of the Rosen-type transformer associated with the build-in magnetic bias field of FeCuNbSiB/FeNi-FACE leads to a large self-biased CME coefficient.
Keywords :
bonding processes; boron alloys; composite materials; copper alloys; ferromagnetic materials; iron alloys; magnetic permeability; magnetisation; magnetoelectric effects; magnetostriction; nanostructured materials; nickel alloys; niobium alloys; piezoelectric devices; silicon alloys; stress effects; transformers; FeCuNbSiB-FeNi; FeNi-FACE layer; Rosen-type piezoelectric transformer; ac voltage; bonding; build-in magnetic bias field; full-wavelength resonance frequency; graded-magnetostrictive layers; magnetic characteristics; magnetization-graded ferromagnetic material; magnetoelectric composite; nanocrystalline foil FeCuNbSiB; permeability; saturation magnetization; self-biased converse magnetoelectric coefficient; stress concentration effects; Magnetic flux; Magnetic resonance; Magnetic switching; Magnetoelectric effects; Magnetostriction; Saturation magnetization;
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.2015.7157079
Filename :
7157079
Link To Document :
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