Claims
- 1. A method for recovering data recorded in a data sector of a disc of a data storage device to improve reliability of the data storage device by steps comprising:
(a) encountering a data error while reading the data from the data sector with a read/write head of the data storage device; (b) categorizing the data error; (c) adjusting a fly height of the read/write head in response to the categorized data error; and (d) re-reading the data from the data sector.
- 2. The method of claim 1, in which the data error of determining step (b) resulting from an encounter of an asperity on the disc surface.
- 3. The method of claim 2, in which the fly height of the read/write head of adjusting step (c) is raised in response to the asperity encountered by the read/right head.
- 4. The method of claim 2, in which the read/write head comprises a read sensor, the data sector has a track center, and in which the disc is rotated by a spindle motor assembly of the data storage device at a substantially constant rotational velocity, and further in which the fly height of the read/write head of adjusting step (c) is adjusted by steps comprising:
(c1) offsetting the read sensor of the read/write head from the track center of the data sector; (c2) lowering the fly height of the read/write head; (c3) rotating the disc beneath the read/write head for a predetermined number of revolutions to burnish the asperity; and (c4) aligning the read sensor with the track center of the data sector.
- 5. The method of claim 4, in which the disc of rotating step (c3) is rotated beneath the read/write head less than one revolution.
- 6. The method of claim 4, in which the disc of rotating step (c3) is rotated beneath the read/write head for at least one revolution.
- 7. The method of claim 1, in which the data error of categorizing step (b) resulting from a degraded signal amplitude generated by the data recorded to the first data sector, and in which the fly height of the read/write head of adjusting step (c) is lowered in response to the degraded signal amplitude generated by the data recorded to the first data sector.
- 8. The method of claim 1, in which the read/write head comprises a read sensor, the data sector has a track center, the data error of categorizing step (b) resulting from a degraded signal amplitude generated by the data recorded to the first data sector, and in which the disc is rotated by a spindle motor assembly of the data storage device at a substantially constant rotational velocity, and further in which the fly height of the read/write head of adjusting step (c) is adjusted by steps comprising:
(c1) lowering the fly height of the read/write head by a predetermined amount; (c2) determining a status of the data error; (c3) repeating method steps (c1) and (c2) for the presence of the data error; and (c4) advancing to re-reading step (d) for the absence of the data error.
- 9. A data storage device comprising:
a basedeck supporting a spindle motor assembly; a disc with a recording surface having an information track attached to the spindle motor assembly, the information track being for data storage; a head stack assembly supported by the basedeck and having a read/write head rotationally positionable adjacent the recording surface, the read/write head comprising a read element for reading data from the information track and a write element for writing data to the information track; and an error recovery routine provided by steps for recovering data recorded on the recording surface.
- 10. The data storage device of claim 9, in which the steps for recovering data recorded on the recording surface comprises steps of:
(a) encountering a data error while reading the data from the data sector with a read/write head of the data storage device; (b) categorizing the data error; (c) adjusting a fly height of the read/write head in response to the categorized data error; and (d) re-reading the data from the data sector.
- 11. The data storage device of claim 10, in which the data error of categorizing step (b) resulting from an encounter of an asperity on the disc surface.
- 12. The data storage device of claim 11, in which the fly height of the read/write head of adjusting step (c) is raised in response to the asperity encountered by the read/right head.
- 13. The data storage device of claim 11, in which the read/write head comprises a read sensor, the data sector has a track center, and in which the disc is rotated by a spindle motor assembly of the data storage device at a substantially constant rotational velocity, and further in which the fly height of the read/write head of adjusting step (c) is adjusted by steps comprising:
(c1) offsetting the read sensor of the read/write head from the track center of the data sector; (c2) lowering the fly height of the read/write head; (c3) rotating the disc beneath the read/write head for a predetermined number of revolutions to burnish the asperity; and (c4) aligning the read sensor with the track center of the data sector.
- 14. The data storage device of claim 13, in which the disc of rotating step (c3) is rotated beneath the read/write head less than one revolution.
- 15. The data storage device of claim 13, in which the disc of rotating step (c3) is rotated beneath the read/write head for at least one revolution.
- 16. The data storage device of claim 10, in which the data error of categorizing step (b) resulting from a degraded signal amplitude generated by the data recorded to the first data sector, and in which the fly height of the read/write head of adjusting step (c) is lowered in response to the degraded signal amplitude generated by the data recorded to the first data sector.
- 17. The data storage device of claim 10, in which the read/write head comprises a read sensor, the data sector has a track center, the data error of categorizing step (b) resulting from a degraded signal amplitude generated by the data recorded to the first data sector, and in which the disc is rotated by a spindle motor assembly of the data storage device at a substantially constant rotational velocity, and further in which the fly height of the read/write head of adjusting step (c) is adjusted by steps comprising:
(c1) lowering the fly height of the read/write head by a predetermined amount; (c2) determining a status of the data error; (c3) repeating method steps (c1) and (c2) for the presence of the data error; and (c4) advancing to re-reading step (d) for the absence of the data error.
RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 60/310,319 filed Aug. 6, 2001, entitled Error Recovery and Reliability Features Using Active Fly Height Control In A Disc Drive.
Provisional Applications (1)
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Number |
Date |
Country |
|
60310319 |
Aug 2001 |
US |