DocumentCode :
1062084
Title :
Dynamics and relaxation of large Barkhausen discontinuity in amorphous wires
Author :
Panina, L.V. ; Mizutani, M. ; Mohri, K. ; Humphrey, F.R. ; Ogasawara, L.
Author_Institution :
Inst. for High Temp., Acad. of Sci., Moscow, USSR
Volume :
27
Issue :
6
fYear :
1991
fDate :
11/1/1991 12:00:00 AM
Firstpage :
5331
Lastpage :
5333
Abstract :
Domain wall processes (domain wall configuration, propagation, and collapse) in magnetostrictive amorphous wires of the composition Fe77.5Si7.5B15 were investigated. The wires were held under tensile stress (up to 1700 MPa in the case of as-quenched). The domain wall length and normal mobility (or damping) as functions of applied stress were found experimentally and from an ellipsoidal domain model. This allows the losses to be separated into eddy current and spin relaxation contributions. It was demonstrated that the spin relaxation contribution to the total damping parameter becomes dominant with increase of tension and leads to a dramatic decrease of the wall mobility. This is the reason cold-drawn and then tension-heated wires with high residual stress exhibit a much lower mobility in spite of the smaller diameter. The process of domain collapse at a collision of two domain walls is accompanied by a very sharp voltage pulse. It is shown that during the collapse the domain is affected by a growing internal magnetic field connected with an excess of domain surface energy in comparison with magnetostatic energy
Keywords :
Barkhausen effect; boron alloys; ferromagnetic properties of substances; iron alloys; magnetic domain walls; magnetic properties of amorphous substances; metallic glasses; silicon alloys; amorphous wires; cold-drawn; domain surface energy; domain wall collapse; domain wall configuration; domain wall length; domain wall propagation; eddy current; ellipsoidal domain model; growing internal magnetic field; large Barkhausen discontinuity; losses; magnetostrictive; metallic glass; sharp voltage pulse; spin relaxation contributions; tensile stress; tension-heated wires; total damping parameter; Amorphous magnetic materials; Amorphous materials; Damping; Magnetic domain walls; Magnetic domains; Magnetic separation; Magnetostatics; Magnetostriction; Tensile stress; Wires;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.278829
Filename :
278829
Link To Document :
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