Title :
Signal processing in recording channels utilizing unshielded magnetoresistive heads
Author :
Koren, Norman L.
Author_Institution :
Eastman Kodak Co., San Deigo, CA, USA
fDate :
9/1/1990 12:00:00 AM
Abstract :
Because unshielded magnetoresistive (UMR) heads offer excellent short-wavelength sensitivity, immunity from Barkhausen noise, a velocity-independent readback signal, and simple construction, they were chosen for use in a new high-performance, multichannel tape system that operates at 80 kbit/in with a 1.5-mil track width. UMR heads have two properties that present a challenge to system designers: (1) a tendency to saturate with large applied magnetic fields, and (2) a high sensitivity to long-wavelength signals and noise which corresponds to an isolated pulse that extends far beyond the system´s minimum transition time. These problems were solved through a combination of write and read equalization. System performance, measured by amplitude and timing margins, is shown to be excellent. In selecting write equalization parameters for amplitude-qualified peak-detecting systems, both amplitude and timing margins are significant. Write-equalized pulses that superficially appear to be highly irregular can frequently be effectively read equalized. The only caution in using write equalization is that write current risetime must be short enough to fully record the added pulses. This should not be a problem in systems with separately optimized write and read heads
Keywords :
magnetic heads; magnetic recording; 1.5 mil; Barkhausen noise; UMR heads; amplitude-qualified peak-detecting systems; large applied magnetic fields; long-wavelength signals; multichannel tape system; noise; performance; recording channels; short-wavelength sensitivity; signal processing; unshielded magnetoresistive heads; velocity-independent readback signal; write equalization; write equalization parameters; Equalizers; Frequency; Magnetic field measurement; Magnetic heads; Magnetic noise; Magnetoresistance; Pulse measurements; Signal processing; Transfer functions; Wavelength measurement;
Journal_Title :
Magnetics, IEEE Transactions on