Title :
Writability of perpendicular recording heads
Author :
Shukh, Alexander
Author_Institution :
Seagate Technol., Minneapolis, MN, USA
fDate :
7/1/2004 12:00:00 AM
Abstract :
A comparative analysis of the writability of trailing pole (TP) and leading pole (LP) writers on double-layer perpendicular media was done by three-dimensional finite-element method modeling. The writability of the writers was estimated by a maximal strength of effective write field that was defined by the Stoner-Wohlfarth model. The LP writer revealed a weaker perpendicular but stronger longitudinal component of the write field and bigger write angle. The longitudinal component and write angle minimize the difference in writability between the two writer designs. The writers showed a different writability dependence on initial permeability and saturation flux density of a soft magnetic keeper. An increase of the keeper permeability improves the writability of the TP writer but marginally affects performance of the other. Modeling results suggest that the LP writer might outperform the writer with the TP if the keeper permeability is below 100. The TP writer did not show a noticeable sensitivity to the saturation flux density of the keeper in a range from 10 to 24 kG. The writability of the LP writer decreases monotonically with the saturation flux density of the keeper. Received results imply that the TP and LP writers might have different requirements to properties of the keeper material.
Keywords :
finite element analysis; magnetic heads; perpendicular magnetic recording; soft magnetic materials; 3D finite-element method modeling; Stoner-Wohlfarth model; double-layer perpendicular media; effective write field; initial permeability; keeper permeability; leading pole writers; longitudinal component; magnetic heads; perpendicular component; perpendicular magnetic recording; perpendicular recording heads; saturation flux density; soft magnetic keeper; soft magnetic underlayer; trailing pole writers; writability dependence; write angle; writer sensitivity; Finite element methods; Helium; Magnetic flux; Magnetic flux leakage; Magnetic heads; Magnetic materials; Permeability; Perpendicular magnetic recording; Saturation magnetization; Soft magnetic materials; Magnetic heads; perpendicular magnetic recording; soft magnetic underlayer; writability;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2004.829315