Title :
Narrow-track differential head: performance on longitudinal and perpendicular disk media
Author :
Trindade, I.G. ; Kryder, M.H.
Author_Institution :
Seagate Technol., Pittsburgh, PA, USA
fDate :
7/1/2002 12:00:00 AM
Abstract :
This paper describes experimental spin-stand tests of a narrow-track differential head, reading back square-wave patterns on longitudinal and perpendicular recording media. The low linear density response of the transducer to recording signals of longitudinal and perpendicular media consisted of bipolar and unipolar pulses, respectively. The paper also presents the head responses to dibits and magnetic patterns recorded in longitudinal media. The head attained the highest linear resolution with a longitudinal thin-film medium, having an areal magnetic moment of Mrδ=0.5 memu/cm2 and a coercivity of Hc=3.0 kOe. The nominal full dynamic range of the transducer was tested with a longitudinal medium having M rδ=1 memu/cm2, but at the expense of a lower linear resolution. The transducer showed a considerably lower linear resolution, when reading back magnetic patterns of a dual-layer perpendicular medium. The experimental time-domain and spectral responses of the dual magnetoresistive head agreed well with those predicted by theory
Keywords :
coercive force; magnetic disc storage; magnetic heads; magnetic moments; magnetic recording; magnetoresistive devices; perpendicular magnetic recording; spectral analysis; time-domain analysis; areal magnetic moment; bipolar pulses; dibit head responses; dual magnetoresistive head; dual-layer perpendicular medium; linear resolution; longitudinal disk media; longitudinal recording media; magnetic patterns; narrow-track differential head; perpendicular disk media; perpendicular recording media; spectral responses; spin-stand tests; square-wave patterns; time-domain responses; transducer dynamic range; transducer linear density response; unipolar pulses; Coercive force; Dynamic range; Magnetic films; Magnetic heads; Magnetic moments; Perpendicular magnetic recording; Signal resolution; Testing; Time domain analysis; Transducers;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2002.1017776