Title :
Magnetization Process in Thin Laminations up to 1 GHz
Author :
Magni, Alessandro ; Beatrice, Cinzia ; Bottauscio, Oriano ; Caprile, Ambra ; Ferrara, Enzo ; Fiorillo, Fausto
Author_Institution :
INRIM-Ist. Naz. di Ricerca Metrol., Torino, Italy
fDate :
4/1/2012 12:00:00 AM
Abstract :
Amorphous and nanocrystalline ribbons with transverse anisotropy have been characterized by magneto-optical, fluxmetric, and transmission line techniques from DC to 1 GHz. The contributions of domain wall displacements and magnetization rotations to the magnetization process, singled out by direct domain observations, consistently fit with the observed dependence of complex permeability and energy losses on frequency. With the domain wall motion suffering progressive hindering with increasing frequency and falling into full relaxation on reaching the MHz range, the magnetization process becomes amenable to a classical description, the concept of loss decomposition being secured. For this description, the conventional rate-independent constitutive relation for the magnetic material proves, however, inadequate. The diffusion equation for the electromagnetic field is therefore coupled with the Landau-Lifshitz-Gilbert equation, taken as a dynamic constitutive magnetic equation, and a solution is worked out by a numerical procedure. Magnetization and eddy-current field are thus obtained versus time at any point of the lamination, account being taken of the exchange field and its restraining action on the skin effect. The so calculated magnetic loss behavior turns out to correctly describe the high-frequency results, while coalescing with the classical eddy-current loss prediction at low frequencies.
Keywords :
amorphous magnetic materials; boron alloys; cobalt alloys; eddy current losses; electromagnetic fields; iron alloys; magnetic anisotropy; magnetic domain walls; magnetic permeability; magneto-optical effects; nanofabrication; nanostructured materials; numerical analysis; silicon alloys; Co67Fe4B17.5Si14.5; Co71Fe4B15Si10; Landau-Lifshitz-Gilbert equation; amorphous ribbons; classical eddy-current loss prediction; complex permeability; conventional rate-independent constitutive relation; diffusion equation; domain wall displacements; domain wall motion; dynamic constitutive magnetic equation; eddy-current field; fluxmetric techniques; loss decomposition; magnetic loss behavior; magnetic material proves; magnetization field; magnetization processing; magnetization rotations; magneto-optical techniques; nanocrystalline ribbons; skin effect; thin laminations; transmission line techniques; transverse anisotropy; Equations; Magnetic hysteresis; Mathematical model; Permeability; Perpendicular magnetic anisotropy; Transmission line measurements; Eddy currents; Landau-Lifshitz-Gilbert equation; magnetic losses; thin laminations;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2011.2172934