DocumentCode
1048724
Title
Theory of single-current domain propagation circuits
Author
Copeland, J.A.
Author_Institution
Bell Telephone Laboratories, Inc., Murray Hill, NJ
Volume
8
Issue
2
fYear
1972
fDate
6/1/1972 12:00:00 AM
Firstpage
241
Lastpage
243
Abstract
Single-current propagation circuits cause circular magnetic domains in a uniaxial ferrimagnetic wafer to move continuously by properly combining dynamic and static forces which vary periodically with distance. The dynamic force is due to a current and varies periodically with time at a frequency
. The static force has a spatial period one-half the period of the dynamic force. The static force may be produced by a periodic array of Permalloy elements or by a periodic modulation of wafer thickness. The general principle is discussed and a simple mathematical model is used to indicate the optimum amplitude and phase of the static force relative to the dynamic force. Single-current propagation circuits [1] cause circular magnetic domains in a uniaxial ferrimagnetic wafer to move continuously by properly combining dynamic and static forces which vary periodically with distance and have an average value of zero. The dynamic force is due to a current and varies periodically with time at a frequency
. The second is static and has a spatial period one-half the period of the dynamic force. The static force may be produced by a periodic array of Permalloy elements [2], [3] or by a periodic modulation of wafer thickness [4]. The general principle is outlined in Figs. 1 and 2.
. The static force has a spatial period one-half the period of the dynamic force. The static force may be produced by a periodic array of Permalloy elements or by a periodic modulation of wafer thickness. The general principle is discussed and a simple mathematical model is used to indicate the optimum amplitude and phase of the static force relative to the dynamic force. Single-current propagation circuits [1] cause circular magnetic domains in a uniaxial ferrimagnetic wafer to move continuously by properly combining dynamic and static forces which vary periodically with distance and have an average value of zero. The dynamic force is due to a current and varies periodically with time at a frequency
. The second is static and has a spatial period one-half the period of the dynamic force. The static force may be produced by a periodic array of Permalloy elements [2], [3] or by a periodic modulation of wafer thickness [4]. The general principle is outlined in Figs. 1 and 2.Keywords
Magnetic bubble circuits; Conductors; Counting circuits; Ferrimagnetic materials; Frequency; Gold alloys; Magnetic circuits; Magnetic domains; Magnetic materials; Strips; Yttrium;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.1972.1067282
Filename
1067282
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