Disk drive measuring radial offset between heads by detecting a difference between ramp contact

Information

  • Patent Grant
  • 9064537
  • Patent Number
    9,064,537
  • Date Filed
    Monday, September 30, 2013
    11 years ago
  • Date Issued
    Tuesday, June 23, 2015
    9 years ago
Abstract
A disk drive is disclosed comprising a plurality of disk surfaces including a first disk surface and a second disk surface. The disk drive further comprises a plurality of heads including a first head actuated over the first disk surface, and a second head actuated over the second disk surface, as well as a ramp proximate an outer diameter of the disk surfaces. A first interval is measured while moving the first head toward the ramp until the first head contacts the ramp, and a second interval is measured while moving the second head toward the ramp until the second head contacts the ramp.
Description
BACKGROUND

Disk drives comprise a disk and a head connected to a distal end of an actuator arm which is rotated about a pivot by a voice coil motor (VCM) to position the head radially over the disk. The disk comprises a plurality of radially spaced, concentric tracks for recording user data sectors and servo sectors. The servo sectors comprise head positioning information (e.g., a track address) which is read by the head and processed by a servo control system to control the actuator arm as it seeks from track to track.



FIG. 1 shows a prior art disk format 2 as comprising a number of servo tracks 4 defined by servo sectors 60-6N recorded around the circumference of each servo track. Each servo sector 6i comprises a preamble 8 for storing a periodic pattern, which allows proper gain adjustment and timing synchronization of the read signal, and a sync mark 10 for storing a special pattern used to symbol synchronize to a servo data field 12. The servo data field 12 stores coarse head positioning information, such as a servo track address, used to position the head over a target data track during a seek operation. Each servo sector 6i further comprises groups of servo bursts 14 (e.g., N and Q servo bursts), which are recorded with a predetermined phase relative to one another and relative to the servo track centerlines. The phase based servo bursts 14 provide fine head position information used for centerline tracking while accessing a data track during write/read operations. A position error signal (PES) is generated by reading the servo bursts 14, wherein the PES represents a measured position of the head relative to a centerline of a target servo track. A servo controller processes the PES to generate a control signal applied to a head actuator (e.g., a voice coil motor) in order to actuate the head radially over the disk in a direction that reduces the PES.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 shows a prior art disk format comprising a plurality of servo tracks defined by servo sectors.



FIGS. 2A and 2B show a disk drive according to an embodiment comprising a plurality of disk surfaces wherein a head is actuated over each disk surface.



FIG. 2C shows an embodiment wherein a first head is offset radially from a second head.



FIG. 2D is a flow diagram according to an embodiment wherein the radially offset between the first and second heads is measured based on a measured interval for each head to contact a ramp.



FIG. 3A shows an embodiment wherein the heads are moved from an inner diameter of the disk to the crash stop.



FIG. 3B shows an embodiment wherein the heads are moved from a radial location identified by a reference track to the crash stop.



FIG. 4 is a flow diagram according to an embodiment wherein an interval for each head to contact the ramp is measured after calibrating a repeatable seek trajectory.



FIG. 5 illustrates a difference between measured ramp contact intervals for first and second heads which represents the radial offset between the first and second heads.



FIG. 6A shows an embodiment wherein a first spiral track is written to a first disk surface.



FIG. 6B shows an embodiment wherein the first spiral track on the first disk surface is read while moving the heads toward the ramp when measuring the corresponding intervals.



FIG. 6C shows an embodiment wherein a second spiral track is bank written to the first disk surface (and other disk surfaces) by servoing on a first spiral track written on the first disk surface.





DETAILED DESCRIPTION


FIGS. 2A and 2B show a disk drive according to an embodiment comprising a plurality of disk surfaces 161-164 including a first disk surface 161 and a second disk surface 162. The disk drive further comprises a plurality of heads 181-184 including a first head 181 actuated over the first disk surface 161, and a second head 182 actuated over the second disk surface 162, as well as a ramp 20 proximate an outer diameter of the disk surfaces. The disk drive further comprises control circuitry 22 configured to execute the flow diagram of FIG. 2D, wherein a first interval is measured while moving the first head toward the ramp until the first head contacts the ramp (block 24), and a second interval is measured while moving the second head toward the ramp until the second head contacts the ramp (block 26).


When executing the flow diagram of FIG. 2D, the disk surfaces 161-164 may be blank, partially written with servo data, or fully written with servo data such as the servo sectors shown in FIG. 1. In an embodiment described below, the flow diagram of FIG. 2D may be executed prior to servo writing the disk surfaces 161-164 with servo data (e.g., spiral servo tracks and/or servo sectors). After the disk surfaces 161-164 have been written with servo data, in one embodiment the control circuitry 22 processes a read signal 28 emanating from the head 18 to demodulate the servo data and generate a position error signal (PES) representing an error between the actual position of the head and a target position relative to a target track. The control circuitry 22 filters the PES using a suitable compensation filter to generate a control signal 30 applied to a voice coil motor (VCM) 32 which rotates an actuator arm 34 about a pivot in order to actuate the head 18 radially over the disk 16 in a direction that reduces the PES. The servo data may comprise any suitable head position information, such as a spiral servo track, or a servo sector comprising a track address for coarse positioning and servo bursts for fine positioning. The servo bursts may comprise any suitable pattern, such as an amplitude based servo pattern or a phase based servo pattern (FIG. 1).


In one embodiment, there is a radial offset between the heads 181-184 due, for example, to a manufacturing tolerance of the disk drive. FIG. 2C illustrates an example of a radial offset between the first head 181 and the second head 182 such that when unloading the heads onto the ramp 20 the second head 182 will contact the ramp 20 before the first head 181 contacts the ramp 20. In one embodiment, the control circuitry 22 measures the relative radial offset between all of the heads 181-184 by moving each head toward the ramp 20 and measuring a corresponding interval until each head contacts the ramp 20.



FIG. 3A illustrates an embodiment wherein the control circuitry 22 rotates the head stack assembly shown in FIG. 2B until it presses against an inner diameter crash stop so that the heads are positioned at a starting reference position near the inner diameter of the disk surfaces. The control circuitry 22 then rotates the head stack assembly in the opposite direction so that the heads moves toward the ramp 20. While moving the heads toward the ramp 20, a first interval is measured until the first head 181 contacts the ramp 20. The control circuitry 22 then rotates the head stack assembly back until it again presses against the inner diameter crash stop, and then performs the same operation in order to measure the second interval for the second head, and so on for each head. After measuring the interval for each head, the control circuitry 22 may evaluate the intervals in order to measure the relative radial offset between the heads (e.g., as shown in FIG. 20).


The interval required for each head to contact the ramp 20 may be measured relative to any suitable reference point. FIG. 3B illustrates an embodiment wherein the heads may be moved starting from a radial location on one of the disk surfaces (e.g., the first disk surface 161) which may be defined by suitable reference servo data, such as a reference servo track 36 defined by servo sectors. In one embodiment, the reference servo track 36 may be written to the first disk surface 161 prior to servo writing the disk surface with, for example, servo sectors that define concentric servo tracks as shown in FIG. 1. Alternatively, the reference servo track 36 may comprise one of the concentric servo tracks after having servo written the first disk surface 161. In one embodiment, the control circuitry 22 positions all of the heads at the reference position by servoing the first head 181 over the first disk surface 161 until the first head 181 is positioned over the reference servo track 36. The control circuitry 22 then moves all the heads toward the ramp 20 while evaluating a suitable signal generated for one of the heads that indicates when the head has contacted the ramp 20.


In one embodiment, when moving all the heads relative to a reference point on the first disk surface 161, the first disk surface 161 may comprise any suitable servo data disbursed at any suitable frequency on the first disk surface 161. For example, the first disk surface 161 may comprise multiple reference servo tracks (such as reference servo track 36 in FIG. 3B) that are spaced radially across the disk surface. When the first head 181 is moved toward the ramp 20, the periodic servo data written on the first disk surface 161 may be read by the first head 181 in order to adjust a seek trajectory for the heads during the seek toward the ramp 20. In this embodiment, the interval for each head to contact the ramp 20 may be measured relative to the last reference point read from the first disk surface 161. In one embodiment, the servo data on the first disk surface 161 may comprise a spiral track as described in more detail below, wherein a reference point may be generated each time the head crosses the spiral track. In yet another embodiment, the servo data written on the first disk surface 161 may comprise a full set of servo written concentric servo tracks such as shown in FIG. 1, wherein the reference point for measuring the interval may be the last concentric servo track detected on the first disk surface 161 before each head contacts the ramp 20.


Any suitable signal may be generated in order to detect when one of the heads contacts the ramp 20. For example, in one embodiment the read signal emanating from the head may indicate when the head contacts the ramp 20. In another embodiment, each head may be fabricated with a suitable fly height sensor or touchdown sensor (e.g., a capacitive or magnetoresistive element) for generating a signal that may indicate when each head contacts the ramp 20. In yet another embodiment, the disk drive may employ a suitable microactuator (e.g., a piezoelectric actuator) for actuating each head over the respective disk surface in fine movements, wherein the microactuator may actuate the head in any suitable manner, such as by actuating a suspension relative to the actuator arm, or actuating the head relative to the suspension. In one embodiment, the control circuitry 22 may be configured to sense a signal generated by the microactuator which may indicate when the head contacts the ramp 20.


In one embodiment, the control circuitry 22 may evaluate the ramp contact signals generated by all of the heads concurrently while moving the head stack assembly toward the ramp 20 in a single pass. In alternative embodiment, the control circuitry 22 may evaluate the ramp contact signal generated by a single head which requires the head stack assembly to be moved toward the ramp in multiple passes (one pass for each head). This embodiment is understood with reference to the flow diagram of FIG. 4 wherein first a repeatable seek trajectory is calibrated for moving the heads from the reference point toward the ramp (block 38). Any suitable technique may be employed to calibrate the repeatable seek trajectory, such as by performing multiple seeks from the reference point to the ramp 20 and adjusting the seek trajectory (e.g., acceleration, constant velocity, and deceleration segments) until the seek time becomes substantially constant. In one embodiment, when calibrating the repeatable seek trajectory, the seek time is evaluated for a single head, such as the first head 181 in the embodiments of FIG. 3A or FIG. 3B, wherein the seek time may be measured as the interval between the beginning of the seek until the first head 181 contacts the ramp 20. In another embodiment, the first disk surface 161 may comprise reference servo data, such as one or more concentric servo tracks or a spiral track as described below. When calibrating the repeatable seek trajectory, the seek trajectory may be adjusted each time the first head 181 crosses over the reference servo data. In this embodiment, the interval for each head to contact the ramp 20 may be measured relative to the last reference point on the first disk surface 161 during the seek before the heads contact the ramp 20.


After calibrating the repeatable seek trajectory at block 38, an index i is initialized to the first head (block 40) to select the first head to measure the first interval required to move the head from the reference point until contacting the ramp. The selected head is then moved to the reference point (block 42) and then moved toward the ramp (block 44) while measuring the ith interval until the ith head contacts the ramp (block 46). The index i is incremented (block 48) and the flow diagram repeated for the next head until an interval has been measured for each head. The relative radial offset between the heads is then measured based on the measured intervals (block 50).



FIG. 5 illustrates a first interval (t1) measured for the first head 181 and a second interval (t2) measured for the second head 182. Referring to the example of FIG. 2C, the second head 182 is radially offset from the first head 181 such that the second head 182 will contact the ramp sooner, and therefore the second interval (t2) is shorter than the first interval (t1). The difference between the first interval (t1) and the second interval (t2) represents the radial offset between the first head 181 and the second head 182. In one embodiment, the difference between the intervals may be converted into a physical distance based on the seek trajectory used to move the heads toward the ramp 20.



FIG. 6A illustrates an embodiment wherein a spiral track 52 may be written to the first disk surface 161 while moving the first head 181 at a substantially constant velocity across the first disk surface 161 until the first head 181 contacts the ramp 20. The seek trajectory for writing the spiral track 52 may be calibrated, for example, by performing multiple seeks and adjusting the seek trajectory until the seek time from the ID crash stop to the ramp 20 is substantially constant. After writing the spiral track 52, the repeatable seek trajectory may be calibrated at block 38 of FIG. 4 by reading the reference points 54A-54C on the first disk surface 161 at each spiral track crossing as illustrated in FIG. 6B. As each reference point is read, the seek trajectory for measuring the intervals at block 46 of FIG. 4 is adjusted. Once the seek trajectory has been calibrated, the heads are moved across the radius of the disk based on the calibrated seek trajectory and the reference points 54A-54C are read from the first disk surface 161 using the first head 181. When the last reference point 54C is reached, an interval is measured from the last reference point 54C until each head contacts the ramp 20 (i.e., the intervals shown in FIG. 5 in this embodiment are relative to the last reference point 54C on the first disk surface 161 as shown in FIG. 6B). In the embodiment of FIG. 4 where a seek is performed to measure the ramp contact interval for each head, each seek is started from the same radial location and from the same angular phase on the first disk surface 161 so that all the ramp contact intervals are measured from the same reference point 54C on the spiral track 52 during each seek. In one embodiment, the seek trajectory when measuring the ramp contact intervals causes the first head 181 to move faster over the first disk surface 161 as compared to the seek trajectory used to write the spiral track 52. The faster seek trajectory when measuring the ramp contact intervals causes the first head 181 to cross the spiral track 52 multiple times during the seek as shown in FIG. 6B.


In one embodiment, the disk surfaces in the disk drive may initially be devoid of any servo data (i.e., blank) prior to writing the spiral track 52 to the first disk surface 161. The embodiment of FIGS. 6A and 6B therefore enables measuring the ramp contact interval for each head and the relative radial offsets starting from blank, unservowritten disks. Further, servoing on the spiral track 52 written on the first disk surface 161 helps improve the accuracy of the measured ramp contact intervals since the spiral track 52 helps calibrate a repeatable seek trajectory at block 38 of FIG. 4. In addition, when the first head 181 reaches the last reference point 54C on the spiral track 52, the first head 181 is moving at a substantially constant velocity which improves the accuracy of the measured ramp contact intervals (as compared to starting from zero velocity at reference point 54C).


The radial offset measured relative to each head may be used for any suitable purpose. In one embodiment, the measured radial offsets may be used as a screening criterion during manufacturing in order to identify disk drives that need to be reworked or discarded. In another embodiment, the measured radial offsets may be used as feedback to improve the manufacturing process of the head stack assembly, for example, to reduce the radial offset between the heads. In yet another embodiment, the measured radial offsets may be used to limit the stroke of the heads for any suitable reason, such as to facilitate a self servo writing operation wherein the control circuitry writes servo data to each disk surface, such as spiral tracks and/or concentric servo sectors. For example, a boundary for the written servo data may be defined at the outer diameter of the disk based on the outer most diameter head that first contacts the ramp 20 so that when bank servo writing multiple disk surfaces concurrently, the servo data may extend up to the ramp 20 just before the outer most diameter head contacts the ramp 20.


An example of this embodiment is understood with reference to FIG. 6C where a first spiral track 56 is first written to the first disk surface 161 while seeking the first head 181 from the inner diameter toward the outer diameter, and then while servoing on the first spiral track 56 a second spiral track 58 is bank written to all of the disk surfaces including the first disk surface 161 as shown in FIG. 6C (where the second spiral track 58 is written by moving the heads from the outer diameter toward the inner diameter of each disk surface). The first spiral track 56 may be the same as the spiral track 52 shown in FIG. 6A, or it may be an intermediate spiral track that is written to the first disk surface 161 while servoing on spiral track 52. During the bank writing of the second spiral track 58 to all of the disk surfaces, the stroke of the heads is limited based on the radial offset between the heads to ensure the second spiral track 58 may be written to all of the disk surfaces, including to the disk surface with the outer most diameter head. That is, limiting the stroke of the heads ensures that all of the heads are over their respective disk surface (and not on the ramp 20) when bank writing the second spiral track 58 near the outer diameter of the disk surfaces.


In another embodiment, the servo data (e.g., second spiral track 58) may be written to each disk surface serially (rather than bank servo written) while servoing on the first spiral track 56 written on the first disk surface 161. For example, the second spiral track 58 may be written to the first disk surface 161 while servoing on the first spiral track 56, and then a second spiral track 58 may be written to the second disk surface 162 while servoing on the first spiral track 56. In this embodiment, it may still be desirable to limit the stroke of all the heads based on the outer most diameter head. For example, in one embodiment it may be desirable to servo write the same number of concentric servo tracks on all of the disk surfaces, and therefore the stroke of all the heads when writing the second spiral track 58 (from which the concentric servo tracks are written) may be limited based on the stroke of the outer most diameter head.


Any suitable control circuitry may be employed to implement the flow diagrams in the above embodiments, such as any suitable integrated circuit or circuits. For example, the control circuitry may be implemented within a read channel integrated circuit, or in a component separate from the read channel, such as a disk controller, or certain operations described above may be performed by a read channel and others by a disk controller. In one embodiment, the read channel and disk controller are implemented as separate integrated circuits, and in an alternative embodiment they are fabricated into a single integrated circuit or system on a chip (SOC). In addition, the control circuitry may include a suitable preamp circuit implemented as a separate integrated circuit, integrated into the read channel or disk controller circuit, or integrated into a SOC.


In one embodiment, the control circuitry comprises a microprocessor executing instructions, the instructions being configured to cause the microprocessor to perform the flow diagrams described herein. The instructions may be stored in any computer-readable medium. In one embodiment, they may be stored on a non-volatile semiconductor memory external to the microprocessor, or integrated with the microprocessor in a SOC. In another embodiment, the instructions are stored on the disk and read into a volatile semiconductor memory when the disk drive is powered on. In yet another embodiment, the control circuitry comprises suitable logic circuitry, such as state machine circuitry.


The various features and processes described above may be used independently of one another, or may be combined in various ways. All possible combinations and subcombinations are intended to fall within the scope of this disclosure. In addition, certain method, event or process blocks may be omitted in some implementations. The methods and processes described herein are also not limited to any particular sequence, and the blocks or states relating thereto can be performed in other sequences that are appropriate. For example, described tasks or events may be performed in an order other than that specifically disclosed, or multiple may be combined in a single block or state. The example tasks or events may be performed in serial, in parallel, or in some other manner. Tasks or events may be added to or removed from the disclosed example embodiments. The example systems and components described herein may be configured differently than described. For example, elements may be added to, removed from, or rearranged compared to the disclosed example embodiments.


While certain example embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions disclosed herein. Thus, nothing in the foregoing description is intended to imply that any particular feature, characteristic, step, module, or block is necessary or indispensable. Indeed, the novel methods and systems described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the methods and systems described herein may be made without departing from the spirit of the embodiments disclosed herein.

Claims
  • 1. A disk drive comprising: a plurality of disk surfaces including a first disk surface and a second disk surface;a first head actuated over the first disk surface;a second head actuated over the second disk surface;a ramp proximate an outer diameter of the disk surfaces; andcontrol circuitry configured to: measure a first time interval while moving the first head toward the ramp until the first head contacts the ramp;measure a second time interval while moving the second head toward the ramp until the second head contacts the ramp; andmeasure a radial offset between the first head and the second head based on the first interval and the second interval.
  • 2. The disk drive as recited in claim 1, wherein the first head and the second head are coupled to a head stack assembly, and the control circuitry is further configured to: press the head stack assembly against an inner diameter crash stop in order to position the first head proximate an inner diameter of the first disk surface; andafter pressing the head stack assembly against the inner diameter crash stop, move the first head toward the ramp during the first interval.
  • 3. The disk drive as recited in claim 1, wherein the control circuitry is further configured to measure the second time interval by positioning the first head over reference servo data on the first disk surface and then moving the first head and the second head toward the ramp during the second time interval.
  • 4. The disk drive as recited in claim 1, wherein the control circuitry is further configured to measure the second time interval by moving the first head and the second head toward the ramp while periodically reading reference servo data from the first disk surface using the first head.
  • 5. The disk drive as recited in claim 4, wherein the reference servo data comprises a spiral track.
  • 6. The disk drive as recited in claim 1, wherein the control circuitry is further configured to limit a stroke of the first head based on the radial offset.
  • 7. The disk drive as recited in claim 6, wherein the control circuitry is further configured to: write first servo data on the first disk surface; andread the first servo data from the first disk surface while writing second servo data to the second disk surface to an outer limit of the second disk surface based on the limited stroke of the first head.
  • 8. The disk drive as recited in claim 7, wherein: the first servo data comprises a first spiral track; andthe second servo data comprises a second spiral track.
  • 9. A method of operating a disk drive comprising: measuring a first time interval while moving a first head toward a ramp until the first head contacts the ramp;measuring a second time interval while moving a second head toward the ramp until the second head contacts the ramp; andfurther comprising measuring a radial offset between the first head and the second head based on the first interval and the second interval.
  • 10. The method as recited in claim 9, wherein the first head and the second head are coupled to a head stack assembly, and the method further comprises: pressing the head stack assembly against an inner diameter crash stop in order to position the first head proximate an inner diameter of the first disk surface; andafter pressing the head stack assembly against the inner diameter crash stop, moving the first head toward the ramp during the first interval.
  • 11. The method as recited in claim 9, further comprising measuring the second time interval by positioning the first head over reference servo data on a first disk surface and then moving the first head and the second head toward the ramp during the second time interval.
  • 12. The method as recited in claim 9, further comprising measuring the second time interval by moving the first head and the second head toward the ramp while periodically reading reference servo data from a first disk surface using the first head.
  • 13. The method as recited in claim 12, wherein the reference servo data comprises a spiral track.
  • 14. The method as recited in claim 9, further comprising limiting a stroke of the first head based on the radial offset.
  • 15. The method as recited in claim 14, further comprising: writing first servo data on a first disk surface; andreading the first servo data from the first disk surface while writing second servo data to a second disk surface to an outer limit of the second disk surface based on the limited stroke of the first head.
  • 16. The method as recited in claim 15, wherein: the first servo data comprises a first spiral track; andthe second servo data comprises a second spiral track.
  • 17. A disk drive comprising: a plurality of disk surfaces including a first disk surface and a second disk surface;a first head actuated over the first disk surface;a second head actuated over the second disk surface;a ramp proximate an outer diameter of the disk surfaces; andcontrol circuitry configured to: measure a first time interval while moving the first head toward the ramp until the first head contacts the ramp; andmeasure a second time interval by positioning the first head over reference servo data on the first disk surface and then moving the first head and the second head toward the ramp until the second head contacts the ramp.
  • 18. The disk drive as recited in claim 17, wherein the control circuitry is further configured to measure the first time interval by positioning the first head over the reference servo data on the first disk surface and then moving the first head and the second head toward the ramp until the first head contacts the ramp.
  • 19. A method of operating a disk drive comprising: measuring a first time interval while moving a first head toward a ramp until the first head contacts the ramp; andmeasuring a second time interval by positioning the first head over reference servo data on a first disk surface and then moving the first head and the second head toward the ramp until the second head contacts the ramp.
  • 20. The method as recited in claim 19, further comprising measuring the first time interval by positioning the first head over the reference servo data on the first disk surface and then moving the first head and the second head toward the ramp until the first head contacts the ramp.
  • 21. A disk drive comprising: a plurality of disk surfaces including a first disk surface and a second disk surface;a first head actuated over the first disk surface;a second head actuated over the second disk surface;a head stack assembly comprising the first head and the second head;a ramp proximate an outer diameter of the disk surfaces; andcontrol circuitry configured to: press the head stack assembly against an inner diameter crash stop in order to position the first head proximate an inner diameter of the first disk surface; andafter pressing the head stack assembly against the inner diameter crash stop, measure a first time interval while moving the first head toward the ramp until the first head contacts the ramp.
  • 22. A method of operating a disk drive comprising: pressing a head stack assembly against an inner diameter crash stop in order to position a first head proximate an inner diameter of a first disk surface; andafter pressing the head stack assembly against the inner diameter crash stop, measuring a first time interval while moving the first head toward the ramp until the first head contacts the ramp.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application claims priority to provisional U.S. Patent Application Ser. No. 61/877,399, filed on Sep. 13, 2013, which is hereby incorporated by reference in its entirety.

US Referenced Citations (407)
Number Name Date Kind
4321517 Touchton et al. Mar 1982 A
4532802 Yeack-Scranton et al. Aug 1985 A
4691152 Ell et al. Sep 1987 A
5075805 Peddle et al. Dec 1991 A
5384675 Crawforth et al. Jan 1995 A
5455723 Boutaghou et al. Oct 1995 A
5485323 Anderson et al. Jan 1996 A
5559648 Hunter et al. Sep 1996 A
5576906 Fisher et al. Nov 1996 A
5668679 Swearingen et al. Sep 1997 A
5754353 Behrens et al. May 1998 A
5761212 Foland, Jr. et al. Jun 1998 A
5781363 Rowan et al. Jul 1998 A
5828522 Brown et al. Oct 1998 A
5831888 Glover Nov 1998 A
5973870 Boutaghou et al. Oct 1999 A
6000282 Ku et al. Dec 1999 A
6014283 Codilian et al. Jan 2000 A
6021012 Bang Feb 2000 A
6023386 Reed et al. Feb 2000 A
6052076 Patton, III et al. Apr 2000 A
6052250 Golowka et al. Apr 2000 A
6067206 Hull et al. May 2000 A
6078453 Dziallo et al. Jun 2000 A
6091564 Codilian et al. Jul 2000 A
6092412 Flechsig et al. Jul 2000 A
6094020 Goretzki et al. Jul 2000 A
6101065 Alfred et al. Aug 2000 A
6104153 Codilian et al. Aug 2000 A
6122133 Nazarian et al. Sep 2000 A
6122135 Stich Sep 2000 A
6141175 Nazarian et al. Oct 2000 A
6160368 Plutowski Dec 2000 A
6181502 Hussein et al. Jan 2001 B1
6195222 Heminger et al. Feb 2001 B1
6198584 Codilian et al. Mar 2001 B1
6198590 Codilian et al. Mar 2001 B1
6204988 Codilian et al. Mar 2001 B1
6226154 Albrecht May 2001 B1
6243223 Elliott et al. Jun 2001 B1
6249896 Ho et al. Jun 2001 B1
6281652 Ryan et al. Aug 2001 B1
6285521 Hussein Sep 2001 B1
6292318 Hayashi Sep 2001 B1
6292320 Mason et al. Sep 2001 B1
6304407 Baker et al. Oct 2001 B1
6310742 Nazarian et al. Oct 2001 B1
6320718 Bouwkamp et al. Nov 2001 B1
6342984 Hussein et al. Jan 2002 B1
6347018 Kadlec et al. Feb 2002 B1
6369972 Codilian et al. Apr 2002 B1
6369974 Asgari et al. Apr 2002 B1
6411453 Chainer et al. Jun 2002 B1
6429989 Schultz et al. Aug 2002 B1
6462896 Codilian et al. Oct 2002 B1
6476996 Ryan Nov 2002 B1
6484577 Bennett Nov 2002 B1
6493169 Ferris et al. Dec 2002 B1
6496324 Golowka et al. Dec 2002 B1
6498698 Golowka et al. Dec 2002 B1
6507450 Elliott Jan 2003 B1
6519107 Ehrlich et al. Feb 2003 B1
6519115 Yaeger Feb 2003 B1
6534936 Messenger et al. Mar 2003 B2
6538839 Ryan Mar 2003 B1
6545835 Codilian et al. Apr 2003 B1
6549359 Bennett et al. Apr 2003 B1
6549361 Bennett et al. Apr 2003 B1
6549377 Yoshida et al. Apr 2003 B2
6560056 Ryan May 2003 B1
6563660 Hirano et al. May 2003 B1
6568268 Bennett May 2003 B1
6574062 Bennett et al. Jun 2003 B1
6577465 Bennett et al. Jun 2003 B1
6587293 Ding et al. Jul 2003 B1
6590732 Kitagawa et al. Jul 2003 B2
6603622 Christiansen et al. Aug 2003 B1
6614615 Ju et al. Sep 2003 B1
6614618 Sheh et al. Sep 2003 B1
6636377 Yu et al. Oct 2003 B1
6643088 Kawachi Nov 2003 B1
6690536 Ryan Feb 2004 B1
6693764 Sheh et al. Feb 2004 B1
6700726 Gillis et al. Mar 2004 B1
6704156 Baker et al. Mar 2004 B1
6707635 Codilian et al. Mar 2004 B1
6710953 Vallis et al. Mar 2004 B1
6710966 Codilian et al. Mar 2004 B1
6714371 Codilian Mar 2004 B1
6714372 Codilian et al. Mar 2004 B1
6721119 Hassan et al. Apr 2004 B1
6721121 Schreck et al. Apr 2004 B1
6724564 Codilian et al. Apr 2004 B1
6731450 Codilian et al. May 2004 B1
6735041 Codilian et al. May 2004 B1
6738205 Moran et al. May 2004 B1
6738220 Codilian May 2004 B1
6747837 Bennett Jun 2004 B1
6754027 Hirano et al. Jun 2004 B2
6760186 Codilian et al. Jul 2004 B1
6771480 Brito Aug 2004 B2
6788483 Ferris et al. Sep 2004 B1
6791785 Messenger et al. Sep 2004 B1
6795268 Ryan Sep 2004 B1
6798613 Krajnovich et al. Sep 2004 B1
6819518 Melkote et al. Nov 2004 B1
6826006 Melkote et al. Nov 2004 B1
6826007 Patton, III Nov 2004 B1
6847502 Codilian Jan 2005 B1
6850383 Bennett Feb 2005 B1
6850384 Bennett Feb 2005 B1
6867944 Ryan Mar 2005 B1
6876508 Patton, III et al. Apr 2005 B1
6882496 Codilian et al. Apr 2005 B1
6885514 Codilian et al. Apr 2005 B1
6900958 Yi et al. May 2005 B1
6900959 Gardner et al. May 2005 B1
6902007 Orr et al. Jun 2005 B1
6903897 Wang et al. Jun 2005 B1
6914740 Tu et al. Jul 2005 B1
6914743 Narayana et al. Jul 2005 B1
6917489 Lee Jul 2005 B2
6920004 Codilian et al. Jul 2005 B1
6920007 Tominaga et al. Jul 2005 B2
6924959 Melkote et al. Aug 2005 B1
6924960 Melkote et al. Aug 2005 B1
6924961 Melkote et al. Aug 2005 B1
6934114 Codilian et al. Aug 2005 B1
6934135 Ryan Aug 2005 B1
6937419 Suk et al. Aug 2005 B2
6937420 McNab et al. Aug 2005 B1
6937423 Ngo et al. Aug 2005 B1
6952322 Codilian et al. Oct 2005 B1
6954324 Tu et al. Oct 2005 B1
6958881 Codilian et al. Oct 2005 B1
6963465 Melkote et al. Nov 2005 B1
6965488 Bennett Nov 2005 B1
6967458 Bennett et al. Nov 2005 B1
6967811 Codilian et al. Nov 2005 B1
6970319 Bennett et al. Nov 2005 B1
6972539 Codilian et al. Dec 2005 B1
6972540 Wang et al. Dec 2005 B1
6972922 Subrahmanyam et al. Dec 2005 B1
6975480 Codilian et al. Dec 2005 B1
6977789 Cloke Dec 2005 B1
6977791 Zhu et al. Dec 2005 B2
6980389 Kupferman Dec 2005 B1
6987636 Chue et al. Jan 2006 B1
6987639 Yu Jan 2006 B1
6989954 Lee et al. Jan 2006 B1
6992848 Agarwal et al. Jan 2006 B1
6992851 Cloke Jan 2006 B1
6992852 Ying et al. Jan 2006 B1
6995941 Miyamura et al. Feb 2006 B1
6999263 Melkote et al. Feb 2006 B1
6999267 Melkote et al. Feb 2006 B1
7006320 Bennett et al. Feb 2006 B1
7016134 Agarwal et al. Mar 2006 B1
7019932 Hirano et al. Mar 2006 B2
7023637 Kupferman Apr 2006 B1
7023640 Codilian et al. Apr 2006 B1
7027256 Subrahmanyam et al. Apr 2006 B1
7027257 Kupferman Apr 2006 B1
7035026 Codilian et al. Apr 2006 B2
7046472 Melkote et al. May 2006 B1
7046474 Kuramoto et al. May 2006 B2
7046475 Hosokawa May 2006 B2
7050249 Chue et al. May 2006 B1
7050254 Yu et al. May 2006 B1
7050258 Codilian May 2006 B1
7054098 Yu et al. May 2006 B1
7061714 Yu Jun 2006 B1
7064918 Codilian et al. Jun 2006 B1
7068451 Wang et al. Jun 2006 B1
7068459 Cloke et al. Jun 2006 B1
7068461 Chue et al. Jun 2006 B1
7068463 Ji et al. Jun 2006 B1
7088533 Shepherd et al. Aug 2006 B1
7088547 Wang et al. Aug 2006 B1
7095579 Ryan et al. Aug 2006 B1
7110208 Miyamura et al. Sep 2006 B1
7110214 Tu et al. Sep 2006 B1
7113361 Hassan Sep 2006 B2
7113362 Lee et al. Sep 2006 B1
7113365 Ryan et al. Sep 2006 B1
7116505 Kupferman Oct 2006 B1
7126781 Bennett Oct 2006 B1
7158329 Ryan Jan 2007 B1
7159299 McMunigal et al. Jan 2007 B1
7177111 Gururangan et al. Feb 2007 B2
7180703 Subrahmanyam et al. Feb 2007 B1
7184230 Chue et al. Feb 2007 B1
7190547 Khurshudov et al. Mar 2007 B2
7196864 Yi et al. Mar 2007 B1
7199960 Schreck et al. Apr 2007 B1
7199966 Tu et al. Apr 2007 B1
7203019 Liu et al. Apr 2007 B1
7203021 Ryan et al. Apr 2007 B1
7209310 Tsai et al. Apr 2007 B1
7209321 Bennett Apr 2007 B1
7212364 Lee May 2007 B1
7212374 Wang et al. May 2007 B1
7215504 Bennett May 2007 B1
7224546 Orakcilar et al. May 2007 B1
7248426 Weerasooriya et al. Jul 2007 B1
7251098 Wang et al. Jul 2007 B1
7253582 Ding et al. Aug 2007 B1
7253989 Lau et al. Aug 2007 B1
7265933 Phan et al. Sep 2007 B1
7274527 Calfee et al. Sep 2007 B2
7289288 Tu Oct 2007 B1
7295395 Koh et al. Nov 2007 B2
7298574 Melkote et al. Nov 2007 B1
7301717 Lee et al. Nov 2007 B1
7304819 Melkote et al. Dec 2007 B1
7317587 Furuhashi et al. Jan 2008 B2
7330019 Bennett Feb 2008 B1
7330327 Chue et al. Feb 2008 B1
7333280 Lifchits et al. Feb 2008 B1
7333290 Kupferman Feb 2008 B1
7339761 Tu et al. Mar 2008 B1
7365932 Bennett Apr 2008 B1
7388728 Chen et al. Jun 2008 B1
7391583 Sheh et al. Jun 2008 B1
7391584 Sheh et al. Jun 2008 B1
7391586 Keast Jun 2008 B2
7433143 Ying et al. Oct 2008 B1
7440210 Lee Oct 2008 B1
7440225 Chen et al. Oct 2008 B1
7450334 Wang et al. Nov 2008 B1
7450336 Wang et al. Nov 2008 B1
7453661 Jang et al. Nov 2008 B1
7457071 Sheh Nov 2008 B1
7466509 Chen et al. Dec 2008 B1
7468855 Weerasooriya et al. Dec 2008 B1
7477471 Nemshick et al. Jan 2009 B1
7480116 Bennett Jan 2009 B1
7486466 Hara et al. Feb 2009 B2
7489464 McNab et al. Feb 2009 B1
7492546 Miyamura Feb 2009 B1
7495857 Bennett Feb 2009 B1
7499236 Lee et al. Mar 2009 B1
7502192 Wang et al. Mar 2009 B1
7502194 Alexander et al. Mar 2009 B2
7502195 Wu et al. Mar 2009 B1
7502197 Chue Mar 2009 B1
7505223 McCornack Mar 2009 B1
7542225 Ding et al. Jun 2009 B1
7548392 Desai et al. Jun 2009 B1
7551390 Wang et al. Jun 2009 B1
7558016 Le et al. Jul 2009 B1
7573670 Ryan et al. Aug 2009 B1
7576941 Chen et al. Aug 2009 B1
7580212 Li et al. Aug 2009 B1
7583470 Chen et al. Sep 2009 B1
7595954 Chen et al. Sep 2009 B1
7602575 Lifchits et al. Oct 2009 B1
7616399 Chen et al. Nov 2009 B1
7619844 Bennett Nov 2009 B1
7626782 Yu et al. Dec 2009 B1
7630162 Zhao et al. Dec 2009 B2
7639447 Yu et al. Dec 2009 B1
7656604 Liang et al. Feb 2010 B1
7656607 Bennett Feb 2010 B1
7660067 Ji et al. Feb 2010 B1
7663835 Yu et al. Feb 2010 B1
7675707 Liu et al. Mar 2010 B1
7679854 Narayana et al. Mar 2010 B1
7688534 McCornack Mar 2010 B1
7688538 Chen et al. Mar 2010 B1
7688539 Bryant et al. Mar 2010 B1
7697233 Bennett et al. Apr 2010 B1
7701661 Bennett Apr 2010 B1
7710676 Chue May 2010 B1
7715138 Kupferman May 2010 B1
7729079 Huber Jun 2010 B1
7733189 Bennett Jun 2010 B1
7746592 Liang et al. Jun 2010 B1
7746594 Guo et al. Jun 2010 B1
7746595 Guo et al. Jun 2010 B1
7760461 Bennett Jul 2010 B1
7800853 Guo et al. Sep 2010 B1
7800856 Bennett et al. Sep 2010 B1
7800857 Calaway et al. Sep 2010 B1
7839591 Weerasooriya et al. Nov 2010 B1
7839595 Chue et al. Nov 2010 B1
7839600 Babinski et al. Nov 2010 B1
7843662 Weerasooriya et al. Nov 2010 B1
7852588 Ferris et al. Dec 2010 B1
7852592 Liang et al. Dec 2010 B1
7864481 Kon et al. Jan 2011 B1
7864482 Babinski et al. Jan 2011 B1
7869155 Wong Jan 2011 B1
7876522 Calaway et al. Jan 2011 B1
7876523 Panyavoravaj et al. Jan 2011 B1
7916415 Chue Mar 2011 B1
7916416 Guo et al. Mar 2011 B1
7916420 McFadyen et al. Mar 2011 B1
7916422 Guo et al. Mar 2011 B1
7929238 Vasquez Apr 2011 B1
7961422 Chen et al. Jun 2011 B1
8000053 Anderson Aug 2011 B1
8031423 Tsai et al. Oct 2011 B1
8054022 Ryan et al. Nov 2011 B1
8059357 Knigge et al. Nov 2011 B1
8059360 Melkote et al. Nov 2011 B1
8072703 Calaway et al. Dec 2011 B1
8077428 Chen et al. Dec 2011 B1
8078901 Meyer et al. Dec 2011 B1
8081395 Ferris Dec 2011 B1
8085020 Bennett Dec 2011 B1
8116023 Kupferman Feb 2012 B1
8145934 Ferris et al. Mar 2012 B1
8179626 Ryan et al. May 2012 B1
8189286 Chen et al. May 2012 B1
8213106 Guo et al. Jul 2012 B1
8254222 Tang Aug 2012 B1
8300348 Liu et al. Oct 2012 B1
8300438 Herbert Oct 2012 B1
8315005 Zou et al. Nov 2012 B1
8320069 Knigge et al. Nov 2012 B1
8351174 Gardner et al. Jan 2013 B1
8358114 Ferris et al. Jan 2013 B1
8358145 Ferris et al. Jan 2013 B1
8390367 Bennett Mar 2013 B1
8432031 Agness et al. Apr 2013 B1
8432629 Rigney et al. Apr 2013 B1
8451697 Rigney et al. May 2013 B1
8482873 Chue et al. Jul 2013 B1
8498076 Sheh et al. Jul 2013 B1
8498172 Patton, III et al. Jul 2013 B1
8508881 Babinski et al. Aug 2013 B1
8531798 Xi et al. Sep 2013 B1
8537486 Liang et al. Sep 2013 B2
8542455 Huang et al. Sep 2013 B2
8553351 Narayana et al. Oct 2013 B1
8564899 Lou et al. Oct 2013 B2
8576506 Wang et al. Nov 2013 B1
8605382 Mallary et al. Dec 2013 B1
8605384 Liu et al. Dec 2013 B1
8610391 Yang et al. Dec 2013 B1
8611040 Xi et al. Dec 2013 B1
8619385 Guo et al. Dec 2013 B1
8630054 Bennett et al. Jan 2014 B2
8630059 Chen et al. Jan 2014 B1
8634154 Rigney et al. Jan 2014 B1
8634283 Rigney et al. Jan 2014 B1
8643976 Wang et al. Feb 2014 B1
8649121 Smith et al. Feb 2014 B1
8654466 McFadyen Feb 2014 B1
8654467 Wong et al. Feb 2014 B1
8665546 Zhao et al. Mar 2014 B1
8665551 Rigney et al. Mar 2014 B1
8670206 Liang et al. Mar 2014 B1
8687312 Liang Apr 2014 B1
8693123 Guo et al. Apr 2014 B1
8693134 Xi et al. Apr 2014 B1
8699173 Kang et al. Apr 2014 B1
8711027 Bennett Apr 2014 B1
8717696 Ryan et al. May 2014 B1
8717699 Ferris May 2014 B1
8717704 Yu et al. May 2014 B1
8724245 Smith et al. May 2014 B1
8724253 Liang et al. May 2014 B1
8724524 Urabe et al. May 2014 B2
8737008 Watanabe et al. May 2014 B1
8737013 Zhou et al. May 2014 B2
8743495 Chen et al. Jun 2014 B1
8743503 Tang et al. Jun 2014 B1
8743504 Bryant et al. Jun 2014 B1
8749904 Liang et al. Jun 2014 B1
8760796 Lou et al. Jun 2014 B1
8767332 Chahwan et al. Jul 2014 B1
8767343 Helmick et al. Jul 2014 B1
8767354 Ferris et al. Jul 2014 B1
8773787 Beker Jul 2014 B1
8779574 Agness et al. Jul 2014 B1
8780473 Zhao et al. Jul 2014 B1
8780477 Guo et al. Jul 2014 B1
8780479 Helmick et al. Jul 2014 B1
8780489 Gayaka et al. Jul 2014 B1
8786976 Kang et al. Jul 2014 B1
8792202 Wan et al. Jul 2014 B1
8797664 Guo et al. Aug 2014 B1
8804267 Huang et al. Aug 2014 B2
8824081 Guo et al. Sep 2014 B1
8824262 Liu et al. Sep 2014 B1
20020071219 Yoshida et al. Jun 2002 A1
20020141101 Brittner et al. Oct 2002 A1
20020181139 Weiehelt et al. Dec 2002 A1
20040179289 Suk et al. Sep 2004 A1
20050128633 Hosokawa Jun 2005 A1
20050134994 Furuhashi et al. Jun 2005 A1
20050152060 Gururangan et al. Jul 2005 A1
20050280916 Calfee et al. Dec 2005 A1
20050286171 Kim et al. Dec 2005 A1
20060005403 Calfee et al. Jan 2006 A1
20070076317 Keast Apr 2007 A1
20070171560 Furuhashi et al. Jul 2007 A1
20070291394 Hara et al. Dec 2007 A1
20080002274 Allen et al. Jan 2008 A1
20080291564 Tang et al. Nov 2008 A1
20100035085 Jung et al. Feb 2010 A1
20100309574 Bahirat et al. Dec 2010 A1
20120284493 Lou et al. Nov 2012 A1
20130120870 Zhou et al. May 2013 A1
20130148240 Ferris et al. Jun 2013 A1
Non-Patent Literature Citations (3)
Entry
U.S. Appl. No. 11/760,601, filed Jun. 8, 2007, 24 pages.
www.microesys.com/dataStorage/specifications.html.
http://www.microesys.com/pdf/pa2000.pdf, “PA 2000 High Performance Positioning System for Servotrack Writers”, MicroE Systems, PA2000 Rev.S1, 2 pages.
Provisional Applications (1)
Number Date Country
61877399 Sep 2013 US