Claims
- 1. A method for measuring a fly height of a read/write head using a magnetic flux field including a stray magnetic flux field portion generated by a reader of the read/write head coupled to a writer of the read/write head to provide a fly height profile for a data storage device comprising steps of:
(a) providing a write signal to the writer; (b) establishing an initial field strength value of the magnetic flux field; (c) monitoring an intermediate field strength value of the magnetic flux field based on a change in flux density of the stray magnetic flux field portion of the magnetic flux field; (d) detecting a final field strength value of the magnetic flux field; (e) determining a field strength profile based on the initial field strength value, the intermediate field strength value and the final field strength value of the magnetic flux field; and (f) calibrating the field strength profile to a predetermined operating fly height profile to provide the fly height profile of the read/write head for the data storage device.
- 2. The method of claim 1, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, and in which the write signal of providing step (a) is a fixed source write signal wherein the fixed source is a constant current.
- 3. The method of claim 1, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, and in which the write signal of providing step (a) is a fixed source write signal wherein the fixed source is a constant voltage.
- 4. The method of claim 1, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal, and further in which the establishing step (b) comprises steps of:
(b1) applying the fixed source write signal for a predetermined period of time to the inductive element to generate the magnetic flux field with the stray portion of the flux field passing through the recording surface; (b2) passing a signal generated by the magnetoresistive element sensing the magnetic flux field to a preamplifier to provide an amplified signal; and (b3) measuring an amplitude of the signal as the initial field strength value of the magnetic flux field.
- 5. The method of claim 4, in which the recording surface of applying step (b1) is a rotatable recording surface.
- 6. The method of claim 5, in which the signal of passing step (b2) is a plurality of signals generated by the magnetoresistive element over the predetermined period.
- 7. The method of claim 6, in which the amplitude of measuring step (b3) is a composite amplitude of the plurality of signals, wherein the composite amplitude is calculated as the initial field strength value of the magnetic flux field.
- 8. The method of claim 1, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the intermediate field strength value of monitoring step (c) is a plurality of intermediate field strength values, and still further in which the monitoring step (c) comprising steps of:
(c1) accelerating the recording surface to a constant rotational velocity; (c2) flying the magnetoresistive head to an operating fly height; (c3) generating a plurality of signals over a plurality of predetermined time intervals while the operating fly height of the magnetoresistive head is attained, the predetermined time intervals commences with the initiation of the rotational velocity of the recording surface, the plurality of successive signals provided by the magnetoresistive element couple with the magnetic flux field to sense a change in flux density of the stray magnetic flux field portion; and (c4) passing the plurality of signals generated by the magnetoresistive element couple with the magnetic flux field to a preamplifier to provide the plurality of intermediate field strength values.
- 9. The method of claim 1, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the detecting step (d) comprises steps of:
(d1) accelerating the recording surface to a constant rotational velocity; (d2) flying the magnetoresistive head to an operating fly height; (d3) generating a plurality of successive signals over a plurality of predetermined time intervals while the operating fly height of the magnetoresistive head is attained, the predetermined time intervals commences with the initiation of the rotational velocity of the recording surface, the plurality of successive signals provided by the magnetoresistive element couple with the magnetic flux field to sense a change in flux density of the stray magnetic flux field portion; (d4) passing the plurality of successive signals to a preamplifier to provide a plurality of successive amplified signals; and (d5) determining an absence of a difference between successive amplified signals to detect the final field strength value of the magnetic flux field.
- 10. The method of claim 1, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the determining step (e) comprising steps of:
(e1) accelerating the recording surface to a constant rotational velocity; (e2) flying the magnetoresistive head to an operating fly height; (e3) generating a plurality of signals over a plurality of predetermined time intervals while the operating fly height of the magnetoresistive head is attained, the predetermined time intervals commences with the initiation of the rotational velocity of the recording surface, the plurality of successive signals provided by the magnetoresistive element couple with the magnetic flux field to sense a change in flux density of the stray magnetic flux field portion; (e4) passing the plurality of signals generated by the sensed change in flux density of the stray magnetic flux field portion to a preamplifier to provide the plurality of intermediate field strength values; (e5) calculating a change in field strength value for each of the plurality of time intervals as an amplitude difference between each of the plurality of intermediate field strength values and the initial field strength value; and (e6) correlating each change in field strength value with each of the plurality of time intervals to provide the field strength profile.
- 11. The method of claim 1, in which the intermediate field strength value of monitoring step (c) is a plurality of intermediate field strength values, and in which the predetermined operating fly height profile is an operating fly height equation, and further in which calibrating step (f) comprises steps of:
(f1) assigning the initial field strength value a zero fly height value; (f2) assigning the final field strength value an operating fly height value; (f3) selecting a plurality of change in field strength values of the field strength profile, each change in field strength value associated with one of the plurality of intermediate field strength values; (f4) resolving the operating fly height equation with each of the change in field strength values to provide a fly height value for each of the change in field strength values; and (f5) associating the fly height value for each of the change in field strength values with the intermediate field strength value associated with the change in field strength value to provide the fly height profile of the read/write head.
- 12. The method of claim 11, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the operating fly height equation is determined by steps comprising:
(a) placing the data storage device in a vacuum chamber; (b) measuring an amplified signal of a signal generated by the couple of the magnetoresistive element with the magnetic flux field to establish an initial field strength value; (c) accelerating the recording surface to a constant rotational velocity; (d) pulling a plurality of vacuums in the vacuum chamber to emulate an atmospheric pressure for each of a plurality of predetermined altitudes; (e) flying the magnetoresistive head to an operating fly height for each of the atmospheric pressures associated with each of the plurality of predetermined altitudes; (f) generating a field strength signal from the magnetoresistive element couple with the magnetic flux field for each of the plurality of operating fly heights; (g) passing each of the field strength signal to a preamplifier to provide an amplified field strength signal for each of the plurality of operating fly heights; (h) measuring each of the amplified field strength signals to provide a field strength value for each of the plurality of operating fly heights; (i) measuring a fly height of the read/write head for each operating fly height supported by each of the atmospheric pressures of each of the plurality of predetermined altitudes; (j) calculating a change in field strength value between each of the field strength values for each of the plurality of operating fly heights and the initial field strength value; (k) correlating each change in field strength value for each of the plurality of operating fly heights with each of the measured fly heights of the read/write head for each of the plurality of operating fly heights; and (l) developing an empirical equation based on a relationship defined by the correlation between each change in field strength value for each of the plurality of operating fly heights and each of the measured fly heights of the read/write head for each of the plurality of operating fly heights to provide the operating fly height equation.
- 13. A data storage device comprising:
a basedeck supporting a spindle motor assembly; a disc having a recording surface with an information track attached to the spindle motor assembly, the information track being for data storage; an actuator 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 a fly height profile of a read/write head determined by steps for measuring a fly height of the read/write head to provide the fly height profile for the data storage device.
- 14. The data storage device of claim 13, in which the steps for measuring a fly height of the read/write head to provide the fly height profile for the data storage device comprising steps of:
(a) providing a write signal to the writer; (b) establishing an initial field strength value of the magnetic flux field; (c) monitoring an intermediate field strength value of the magnetic flux field based on a change in flux density of the stray magnetic flux field portion of the magnetic flux field; (d) detecting a final field strength value of the magnetic flux field; (e) determining a field strength profile based on the initial field strength value, the intermediate field strength value and the final field strength value of the magnetic flux field; and (f) calibrating the field strength profile to a predetermined operating fly height profile to provide the fly height profile of the read/write head for the data storage device.
- 15. The data storage device of claim 14, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, and in which the write signal of providing step (a) is a fixed source write signal wherein the fixed source signal is selected from a group consisting of a constant current signal and a constant voltage signal.
- 16. The data storage device of claim 14, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal, and further in which the establishing step (b) comprising steps of:
(b1) applying the fixed source write signal for a predetermined period of time to the inductive element to generate the magnetic flux field with the stray portion of the flux field passing through the recording surface; (b2) passing a signal generated by the magnetoresistive element sensing the magnetic flux field to a preamplifier to provide an amplified signal; and (b3) measuring an amplitude of the signal as the initial field strength value of the magnetic flux field.
- 17. The data storage device of claim 16, in which the recording surface of applying step (b1) is a rotatable recording surface.
- 18. The data storage device of claim 17, in which the signal of passing step (b2) is a plurality of signals generated by the magnetoresistive element over the predetermined period.
- 19. The data storage device of claim 18, in which the amplitude of measuring step (b3) is a composite amplitude of the plurality of signals, wherein the composite amplitude is calculated as the initial field strength value of the stray magnetic flux field.
- 20. The data storage device of claim 14, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the intermediate field strength value of monitoring step (c) is a plurality of intermediate field strength values, and still further in which the monitoring step (c) comprising steps of:
(c1) accelerating the recording surface to a constant rotational velocity; (c2) flying the magnetoresistive head to an operating fly height; (c3) generating a plurality of signals over a plurality of predetermined time intervals while the operating fly height of the magnetoresistive head is attained, the predetermined time intervals commences with the initiation of the rotational velocity of the recording surface, the plurality of successive signals provided by the magnetoresistive element couple with the magnetic flux field to sense a change in flux density of the stray magnetic flux field portion; and (c4) passing the plurality of signals generated by the magnetoresistive element couple with the magnetic flux field to a preamplifier to provide the plurality of intermediate field strength values.
- 21. The data storage device of claim 14, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the detecting step (d) comprises steps of:
(d1) accelerating the recording surface to a constant rotational velocity; (d2) flying the magnetoresistive head to an operating fly height; (d3) generating a plurality of successive signals over a plurality of predetermined time intervals while the operating fly height of the magnetoresistive head is attained, the predetermined time intervals commences with the initiation of the rotational velocity of the recording surface, the plurality of successive signals provided by the magnetoresistive element couple with the magnetic flux field to sense a change in flux density of the stray magnetic flux field portion; (d4) passing the plurality of successive signals to a preamplifier to provide a plurality of successive amplified signals; and (d5) determining an absence of a difference between successive amplified signals to detect the final field strength value of the magnetic flux field.
- 22. The data storage device of claim 14, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the determining step (e) comprising steps of:
(e1) accelerating the recording surface to a constant rotational velocity; (e2) flying the magnetoresistive head to an operating fly height; (e3) generating a plurality of signals over a plurality of predetermined time intervals while the operating fly height of the magnetoresistive head is attained, the predetermined time intervals commences with the initiation of the rotational velocity of the recording surface, the plurality of successive signals provided by the magnetoresistive element couple with the magnetic flux field to sense a change in flux density of the stray magnetic flux field portion; (e4) passing the plurality of signals generated by the sensed change in flux density of the stray magnetic flux field portion to a preamplifier to provide the plurality of intermediate field strength values; (e5) calculating a change in field strength value for each of the plurality of time intervals as an amplitude difference between each of the plurality of intermediate field strength values and the initial field strength value; and (e6) correlating each change in field strength value with each of the plurality of time intervals to provide the field strength profile.
- 23. The data storage device of claim 14, in which the intermediate field strength value of monitoring step (c) is a plurality of intermediate field strength values, and in which the predetermined operating fly height profile is an operating fly height equation, and further in which calibrating step (f) comprising steps of:
(f1) assigning the initial field strength value a zero fly height value; (f2) assigning the final field strength value an operating fly height value; (f3) selecting a plurality of change in field strength values of the field strength profile, each change in field strength value associated with one of the plurality of intermediate field strength values; (f4) resolving the operating fly height equation with each of the change in field strength values to provide a fly height value for each of the change in field strength values; and (f5) associating the fly height value for each of the change in field strength values with the intermediate field strength value associated with the change in field strength value to provide the fly height profile of the read/write head.
- 24. The data storage device of claim 23, in which the read/write head is a magnetoresistive head, the writer is in inductive element of the magnetoresistive head, the reader is a magnetoresistive element of the magnetoresistive head, the data storage device comprises a disc with a recording surface, and in which the write signal of providing step (a) is a fixed source write signal providing the magnetic flux field with the stray magnetic flux field portion, and further in which the operating fly height equation is determined by steps comprising:
(a) placing the data storage device in a vacuum chamber; (b) measuring an amplified signal of a signal generated by the couple of the magnetoresistive element with the magnetic flux field to establish an initial field strength value; (c) accelerating the recording surface to a constant rotational velocity; (d) pulling a plurality of vacuums in the vacuum chamber to emulate an atmospheric pressure for each of a plurality of predetermined altitudes; (e) flying the magnetoresistive head to an operating fly height for each of the atmospheric pressures associated with each of the plurality of predetermined altitudes; (f) generating a field strength signal from the magnetoresistive element couple with the magnetic flux field for each of the plurality of operating fly heights; (g) passing each of the field strength signal to a preamplifier to provide an amplified field strength signal for each of the plurality of operating fly heights; (h) measuring each of the amplified field strength signals to provide a field strength value for each of the plurality of operating fly heights; (i) measuring a fly height of the read/write head for each operating fly height supported by each of the atmospheric pressures of each of the plurality of predetermined altitudes; (j) calculating a change in field strength value between each of the field strength values for each of the plurality of operating fly heights and the initial field strength value; (k) correlating each change in field strength value for each of the plurality of operating fly heights with each of the measured fly heights of the read/write head for each of the plurality of operating fly heights; and (l) developing an empirical equation based on a relationship defined by the correlation between each change in field strength value for each of the plurality of operating fly heights and each of the measured fly heights of the read/write head for each of the plurality of operating fly heights to provide the operating fly height equation.
RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 60/328,273 filed Oct. 10, 2001, entitled Fly Height Sensor Using Writer Flux.
Provisional Applications (1)
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Number |
Date |
Country |
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60328273 |
Oct 2001 |
US |