DocumentCode :
3537070
Title :
Modeling and design of discrete track recording media
Author :
Roddick, Eric ; Wachenschwanz, David
Author_Institution :
Komag Inc., San Jose, CA, USA
fYear :
2005
fDate :
4-8 April 2005
Firstpage :
1379
Lastpage :
1380
Abstract :
In this paper, modeling and design of discrete track recording (DTR) media are done. The DTR media consists of lands on which the data is stored and recessed grooves that provide the magnetic isolation between adjacent data tracks. A simple model is formulated which assumes writing occurs over the land as well as the entire groove, with only a degradation due to the spacing loss in the groove. To account for this spacing loss, measurements are made on disks with different overcoats and an empirical expression for the spacing dependence is derived. The total spacing loss included the normal -55 d/λ dB "Wallace" read spacing loss as well as the empirically derived write spacing loss expression. The maximum signal level from the grooves or adjacent lands is required to be 30 dB lower than for the signal on the land being read. A plot of groove depth requirements is done for different areal densities for given magnetic read widths. As these read widths become larger, a greater portion of the read sensor would detect transitions in the groove, and thus the groove depth must become larger. For the 120 Gb/in2 design, a filling factor of 2/3 translates to a groove width of 65 nm. Widening the magnetic read width to half the track pitch would require a groove depth of 26 nm, a value 2.5 times smaller than the width. For filling factors 0.6 and 0.7, there is a 1 dB improvement in media signal-to-noise ratio (SNR) for modest groove width-depth ratios of 3, over a conventional flat disk.
Keywords :
data recording; magnetic disc storage; magnetic heads; magnetic recording noise; storage media; areal densities; data tracks; degradation; discrete track recording media design; empirical expression; filling factor; flat disk; groove depth requirement plot; lands; magnetic isolation; magnetic read widths; media signal-to-noise ratio; modeling; overcoats; read sensor; signal level; spacing loss; width-depth ratios; Degradation; Disk recording; Filling; Magnetic flux; Magnetic heads; Magnetic recording; Magnetic sensors; Perpendicular magnetic recording; Signal to noise ratio; Solids;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetics Conference, 2005. INTERMAG Asia 2005. Digests of the IEEE International
Print_ISBN :
0-7803-9009-1
Type :
conf
DOI :
10.1109/INTMAG.2005.1464119
Filename :
1464119
Link To Document :
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