Claims
- 1. A servo writing head that generates a magnetic flux for producing one or more servo patterns in a data storage medium, the head comprising a zigzag servo writing gap, wherein the zigzag servo writing gap comprises at least three legs of a zigzag pattern.
- 2. The servo writing head of claim 1, wherein the head further comprises a second kind of servo writing gap.
- 3. The servo writing head of claim 1, wherein the second kind of servo writing gap comprises a chevron pattern.
- 4. The servo writing head of claim 1, wherein the second kind of servo writing gap comprises first and second opposed chevron patterns.
- 5. The servo writing head of claim 1, wherein the second kind of servo writing gap comprises at least one leg parallel to at least one leg of the zigzag servo writing gap, wherein each leg of the zigzag servo writing gap has a cross-band length, and wherein the parallel leg of the second servo writing gap has a cross-band length that is at least as long as the total cross-band length of at least two of the zigzag legs.
- 6. The servo writing head of claim 5, wherein the zigzag servo writing gap and the second kind of servo writing gap may be independently subjected to magnetic flux energy.
- 7. The servo writing head of claim 1, wherein the head further comprises:
(a) a magnetically permeable core having a nonmagnetic sub-gap core in a manner such that the magnetically permeable core comprises a first pole and a second pole; (b) a magnetically permeable layer that spans from the first pole to the second pole and has a region that overlies the sub-gap core ; and (c) an electrically conductive coil operationally engaging the magnetically permeable core; and wherein the zigzag servo writing gap is positioned within the region of the magnetically permeable layer that overlies the sub-gap core.
- 8. The servo writing head of claim 7, wherein the electrically conductive coil comprises a thin film coil.
- 9. The servo writing head of claim 1, wherein the zigzag servo writing gap comprises first and second ends, wherein at least one of said ends comprises a non-rectilinear gap termination feature.
- 10. The servo writing head of claim 9, wherein the non-rectilinear gap portion has a generally elliptical contour.
- 11. A method of writing servo features on a data storage medium, comprising the steps of:
(a) providing a servo writing head that comprises at least one zigzag servo writing gap, wherein the zigzag servo writing gap comprises at least three legs of a zigzag pattern; and (b) using the head to create corresponding zigzag servo transitions constituting at least a portion of a servo band of the data storage medium.
- 12. The method of claim 11, wherein said step (b) comprises energizing the head in a manner effective to write a sequence of zigzag magnetic flux patterns at a mono-frequency at least within a track following sector of the servo band.
- 13. The method of claim 11, further comprising the step of writing at least a second kind of servo feature one or more sectors of the servo band, wherein the zigzag servo transitions are written in a manner effective to provide track following information and wherein the second kind of servo feature is written in a manner effective to provide information indicative of track identity.
- 14. The method of claim 11, further comprising the step of writing at least a second kind of servo feature one or more sectors of the servo band, wherein the zigzag servo transitions are written in a manner effective to provide track following information and wherein the second kind of servo feature is written in a manner effective to provide information indicative of data group identity.
- 15. The method of claim 11, further comprising the step of writing at least a second kind of servo feature one or more sectors of the servo band, wherein the zigzag servo transitions are written in a manner effective to provide track following information and wherein the second kind of servo feature is written in a manner effective to provide information indicative of track and data group identity.
- 16. The method of claim 11, wherein the head comprises a plurality of the zigzag servo writing gaps and wherein step (b) comprises using the head to write zigzag servo transitions in a plurality of servo bands of the data storage medium.
- 17. The method of claim 11, wherein the data storage medium is a magnetic recording tape.
- 18. The method of claim 11, wherein the head comprises a thin film, electrically conductive coil incorporated in the head in a manner effective to help generate a magnetic flux pattern used to write the zigzag servo transitions.
- 19. A method of forming a servo band on a data storage medium, comprising the step of using a servo head in accordance with claim 1 to write an azimuthal style servo pattern into at least a portion of at least one servo band on the data storage medium.
- 20. A data storage medium comprising at least one servo band and at least one data band, wherein the servo band comprises a plurality of servo tracks, each of said servo tracks comprising azimuthal servo transitions having an azimuthal orientation that alternates from servo track to adjacent servo track.
- 21. The data storage medium of claim 21, wherein the data band comprises a plurality of data tracks, said data tracks comprising alternating azimuth style data transitions.
- 22. The data storage medium of claim 20, wherein the alternating azimuth style servo transitions are written at a mono-frequency at least within a track following sector of a servo band.
- 23. The data storage medium of claim 20, wherein the azimuthal servo transitions in a servo track are written in a manner effective to provide track following information.
- 24. The data storage medium of claim 23, wherein the servo band further comprises at least a second kind of servo transition feature.
- 25. The data storage medium of claim 24, wherein the second kind of servo transition feature provides track identification information.
- 26. The data storage medium of claim 24, wherein the second kind of servo transition feature provides data group identification information.
- 27. The data storage medium of claim 24, wherein the second kind of servo transition feature provides track and data group identification information.
- 28. The data storage medium of claim 20 wherein the servo transitions within each servo track of at least a track following sector have the same azimuthal orientation.
- 29. A method of recording data on a data storage medium, comprising the steps of:
(a) providing a data storage medium comprising at least one servo band having a plurality of servo tracks, each of said servo tracks comprising azimuthal servo transitions having an azimuthal orientation that alternates from servo track to adjacent servo track; and (b) recording data onto one or more data tracks of the data storage medium in a manner such that the data tracks comprise azimuthal data transitions having an azimuthal orientation that alternates from servo track to adjacent servo track.
- 30. A method of reading data on a data storage medium, comprising the steps of:
(a) providing a data storage medium comprising (i) at least one servo band and at least one data band, wherein the servo band comprises a plurality of servo tracks, each of said servo tracks comprising azimuthal servo transitions having an azimuthal orientation that alternates from servo track to adjacent servo track, and (ii) at least one data band comprising a plurality of data tracks; (b) deriving a servo signal from the servo band; and (c) using information comprising the servo signal to assist in reading data from at least one of the data tracks.
- 31. The method of claim 30, wherein step (b) comprises using at least one servo sensor having an azimuthal orientation corresponding to an azimuthal orientation of the azimuthal servo transitions of at least one servo track from which the servo signal is obtained.
- 32. The method of claim 30, wherein the data tracks comprise azimuthal data transitions having an azimuthal orientation that alternates from data track to adjacent data track, and wherein step (c) comprises using a data sensor having an azimuthal orientation corresponding to an azimuthal orientation of the azimuthal data transitions of at least one data track from which the data is read.
- 33. A tape cartridge comprising:
(a) a cartridge housing; and (b) a data storage medium contained in the cartridge housing, wherein the data storage medium comprises at least one servo band and at least one data band, wherein the servo band comprises a plurality of servo tracks, each of said servo tracks comprising azimuthal servo transitions having an azimuthal orientation that alternates from servo track to adjacent servo track.
- 34. The tape cartridge of claim 33, wherein the data band comprises a plurality of data tracks, said data tracks comprising alternating azimuth style data transitions.
- 35. The tape cartridge of claim 33, wherein the alternating azimuth style servo transitions are written at a mono-frequency at least within a track following sector of a servo band.
- 36. The tape cartridge of claim 33, wherein the azimuthal servo transitions in a servo track are written in a manner effective to provide track following information.
- 37. The tape cartridge of claim 33, wherein the servo band further comprises at least a second kind of servo transition feature.
- 38. The tape cartridge of claim 33, wherein the second kind of servo transition feature provides track identification information.
- 39. The tape cartridge of claim 33, wherein the second kind of servo transition feature provides data group identification information.
- 40. The tape cartridge of claim 33, wherein the second kind of servo transition feature provides track and data group identification information.
- 41. The tape cartridge of claim 33 wherein the servo transitions within each servo track of at least a track following sector have the same azimuthal orientation.
- 42. A servo pattern writing apparatus, comprising a servo writing head that generates a magnetic flux for producing one or more servo patterns in a data storage medium, the head comprising a zigzag servo writing gap, wherein the zigzag servo writing gap comprises at least three legs of a zigzag pattern.
- 43. The servo pattern writing apparatus of claim 42, wherein the head further comprises a second kind of servo writing gap.
- 44. The servo pattern writing apparatus of claim 42, wherein the second kind of servo writing gap comprises a chevron pattern.
- 45. The servo pattern writing apparatus of claim 42, wherein the second kind of servo writing gap comprises first and second opposed chevron patterns.
- 46. The servo pattern writing apparatus of claim 42, wherein the second kind of servo writing gap comprises at least one leg parallel to at least one leg of the zigzag servo writing gap, wherein each leg of the zigzag servo writing gap has a cross-band length, and wherein the parallel leg of the second servo writing gap has a cross-band length that is at least as long as the total cross-band length of at least two of the zigzag legs.
- 47. The servo pattern writing apparatus of claim 46, wherein the zigzag servo writing gap and the second kind of servo writing gap may be independently subjected to magnetic flux energy.
- 48. The servo pattern writing apparatus of claim 42, wherein the head further comprises:
(a) a magnetically permeable core having a nonmagnetic sub-gap core in a manner such that the magnetically permeable core comprises a first pole and a second pole; (b) a magnetically permeable layer that covers the magnetically permeable core, said magnetically permeable layer comprises a gap portion that overlies the sub-gap core; and (c) an electrically conductive coil operationally engaging the magnetically permeable core; and (d) wherein the zigzag servo writing gap is positioned within the gap portion of the magnetically permeable layer.
- 49. The servo pattern writing apparatus of claim 48, wherein the electrically conductive coil comprises a thin film coil.
- 50. The servo pattern writing apparatus of claim 42, wherein the zigzag servo writing gap comprises first and second ends, wherein at least one of said ends comprises a non-rectilinear gap portion.
- 51. The servo pattern writing apparatus of claim 50, wherein the non-rectilinear gap portion has a circular contour.
- 52. A servo writer head, comprising:
(a) a substrate, comprising:
(i) first and second sub-pole members; and (ii) a sub-gap member interposed between the first and second sub-pole members; (b) a magnetically permeable layer formed over the substrate such that said magnetically permeable layer overlies the first and second sub-pole members and the sub-gap member; (c) at least a first servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the sub-gap member; and (d) a thin film coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the servo writing gap pattern can be written in a data storage medium.
- 53. The servo writer head of claim 52, wherein the head comprises a plurality of writing channels.
- 54. The servo writer head of claim 53, wherein the first servo writing gap pattern comprises a zigzag pattern having at least three legs.
- 55. The servo writer head of claim 52, further comprising a second servo writing gap formed in the magnetically permeable layer, wherein the first and second servo writing gaps are in the same channel.
- 56. The servo writer head of claim 53, wherein more than one of said plurality of channels each comprises the first servo writing gap pattern and a second servo writing gap pattern.
- 57. The servo writer head of claim 54, further comprising a second servo writing gap formed in the magnetically permeable layer, wherein the first and second servo writing gaps are in the same channel.
- 58. A method of recording, comprising the step of using the servo writer head of claim 52 to write servo information in a data storage medium.
- 59. The method of claim 58, wherein said using step comprises writing at least one servo band on a data storage medium, wherein the servo band comprises a plurality of azimuth style servo tracks.
- 60. The method of claim 59, wherein said azimuth style servo tracks are written in at least one track following sector and wherein the servo band further comprises a sector selected from the group consisting of a track ID sector, a data group ID sector, and a track and data group ID sector.
- 61. The method of claim 58, wherein said servo information comprises amplitude based servo features and time based servo features.
- 62. The method of claim 61 wherein said amplitude and time based servo features are written into different sectors of a servo band.
- 63. The method of claim 61, wherein said amplitude and time based servo features are written into the same sector of a servo band.
- 64. A compound servo writer head, comprising:
(a) a first servo writing portion comprising:
(i) a substrate, comprising:
(1) first and second sub-pole members; and (2) a sub-gap member interposed between the first and second sub-pole members; (ii) a magnetically permeable layer formed over the substrate such that said magnetically permeable layer overlies the first and second sub-pole members and the sub-gap member; (iii) at least a first servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the sub-gap member; and (iv) a thin film coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the servo writing gap pattern can be written in a data storage medium. (b) a second servo writing portion comprising:
(i) a substrate, comprising:
(1) first and second sub-pole members; and (2) a sub-gap member interposed between the first and second sub-pole members; (ii) a magnetically permeable layer formed over the substrate such that said magnetically permeable layer overlies the first and second sub-pole members and the sub-gap member; (iii) at least a second servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the sub-gap member; and (iv) a coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the servo writing gap pattern can be written in a data storage medium.
- 65. The compound servo writer head of claim 64, wherein the coil of the second servo writing portion comprises a thin film coil.
- 66. The compound servo writer head of claim 64, wherein the first and second servo writing gap patterns are in the same channel.
- 67. The compound servo writer head of claim 64, wherein the head comprises a plurality of channels.
- 68. The compound servo writer head of claim 64, wherein each of the first and second head portions is independently energizable.
- 69. The compound servo writer head of claim 64, wherein the first servo pattern comprises a zigzag pattern having at least three legs.
- 70. A method of recording servo information, comprising the step of using the servo writer head of claim 64 to write servo information in a data storage medium.
- 71. The method of claim 70, wherein said using step comprises writing at least one servo band on a data storage medium, wherein the servo band comprises a plurality of azimuth style servo tracks.
- 72. The method of claim 71, wherein said azimuth style servo tracks are written in at least one track following sector and wherein the servo band further comprises a sector selected from the group consisting of a track ID sector, a data group ID sector, and a track and data group ID sector.
- 73. The method of claim 70, wherein said servo information comprises amplitude based servo features and time based servo features.
- 74. The method of claim 73 wherein said amplitude and time based servo features are written into different sectors of a servo band.
- 75. The method of claim 73, wherein said amplitude and time based servo features are written into the same sector of a servo band.
- 76. A compound servo writer head, comprising:
(a) a first servo writing portion comprising:
(i) a substrate, comprising:
(1) first and second sub-pole members; and (2) a sub-gap member interposed between the first and second sub-pole members; (ii) a magnetically permeable layer formed over the substrate such that said magnetically permeable layer overlies the first and second sub-pole members and the sub-gap member; (iii) at least a first servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the sub-gap member; and (iv) a coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the servo writing gap pattern can be written in a data storage medium; and (b) a second servo writing portion comprising:
(i) a substrate, comprising:
(1) first and second sub-pole members; and (2) a sub-gap member interposed between the first and second sub-pole members; (ii) a magnetically permeable layer formed over the substrate such that said magnetically permeable layer overlies the first and second sub-pole members and the sub-gap member; (iii) at least a second servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the sub-gap member; and (iv) a coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the servo writing gap pattern can be written in a data storage medium.
- 77. The compound servo writer head of claim 76, wherein the first and second servo writing gap patterns are in the same channel.
- 78. The compound servo writer head of claim 76, wherein the head comprises a plurality of channels.
- 79. The compound servo writer head of claim 76, wherein each of the first and second head portions is independently energizable.
- 80. The compound servo writer head of claim 76, wherein the first servo pattern comprises a zigzag pattern having at least three legs.
- 81. A method of recording servo information, comprising the step of using the servo writer head of claim 80 to write servo information in a data storage medium.
- 82. The method of claim 81, wherein said using step comprises writing at least one servo band on a data storage medium, wherein the servo band comprises a plurality of azimuth style servo tracks.
- 83. The method of claim 82, wherein said azimuth style servo tracks are written in at least one track following sector and wherein the servo band further comprises a sector selected from the group consisting of a track ID sector, a data group ID sector, and a track and data group ID sector.
- 84. The method of claim 80, wherein said servo information comprises amplitude based servo features and time based servo features.
- 85. The method of claim 84 wherein said amplitude and time based servo features are written into different sectors of a servo band.
- 86. The method of claim 84, wherein said amplitude and time based servo features are written into the same sector of a servo band.
- 87. A method of making a compound servo writing head, comprising the steps of:
(a) providing a substrate comprising first and second magnetically permeable substrate portions; (b) forming a magnetically permeable layer over the first and second magnetically permeable substrate portions of the substrate, wherein the magnetically permeable layer comprises first and second writing gap features associated with the first and second substrate portions, respectively.
- 88. The method of claim 87, wherein the step of forming the magnetically permeable layer comprises dry etching the magnetically permeable layer.
- 89. The method of claim 87, wherein the step of forming the magnetically permeable layer comprises wet etching the magnetically permeable layer.
- 90. The method of claim 87, wherein the step of forming the magnetically permeable layer comprises selectively plating the magnetically permeable layer.
- 91. The method of claim 87, wherein the step of forming the magnetically permeable layer comprises contacting the magnetically permeable layer with a focused ion beam.
- 92. The method of claim 87, wherein the step of forming the magnetically permeable layer comprises:
(a) forming a patterned mask layer over the first and second magnetically permeable substrate portions, wherein the patterned mask layer comprises a first and second gap features associated with the first and second magnetically permeable substrate portions, respectively; and (b) using the patterned mask layer to help form the first and second writing gap patterns.
- 93. The method of claim 87 wherein at least portions of the first and second servo writing gap patterns are etched at the same time.
- 94. The method of claim 87, wherein the first servo writing gap pattern comprises a zigzag pattern having at least three legs.
- 95. The method of claim 87, wherein the second servo writing gap pattern comprises a pattern selected from a chevron, a vee, and an azimuthally oriented cant.
- 96. The method of claim 87, wherein the first servo writing gap pattern corresponds to track following servo information and wherein the second servo writing gap pattern corresponds to servo information selected from the group consisting of track ID information, data group information, and track and data group ID information.
- 97. The method of claim 87, wherein the first and second servo writing gap patterns are constituents of the same channel.
- 98. The method of claim 92, wherein the head comprises a plurality of channels, each channel of said plurality comprising a first servo writing gap pattern associated with the first substrate portion and a second servo writing gap pattern associated with the second substrate portion.
- 99. A method of recording servo information, comprising the step of using the servo writer head made in accordance with the method of claim 87 to write servo information in a data storage medium.
- 100. The method of claim 99, wherein said using step comprises writing at least one servo band on a data storage medium, wherein the servo band comprises a plurality of azimuth style servo tracks.
- 101. The method of claim 100, wherein said azimuth style servo tracks are written in at least one track following sector and wherein the servo band further comprises a sector selected from the group consisting of a track ID sector, a data group ID sector, and a track and data group ID sector.
- 102. The method of claim 99, wherein said servo information comprises amplitude based servo features and time based servo features.
- 103. The method of claim 102 wherein said amplitude and time based servo features are written into different sectors of a servo band.
- 104. The method of claim 102, wherein said amplitude and time based servo features are written into the same sector of a servo band.
- 105. A data storage medium, comprising servo information, said servo information including first and second kinds of encoded servo features.
- 106. The data storage medium of claim 105, wherein the servo information comprises amplitude based servo features and time based servo features.
- 107. The data storage medium of claim 106, wherein the servo information comprises azimuth style servo tracks formed in one or more track following sectors and time based servo features formed in one or more identification sectors.
- 108. The data storage medium of claim 107, wherein each of said servo tracks comprises azimuthal servo transitions having an azimuthal orientation that alternates from servo track to adjacent servo track, and wherein the time based servo features comprise a first cant oriented at an azimuth angle corresponding to that of two or more nonadjacent servo tracks and a second cant oriented at an opposite azimuth angle corresponding to two or more nonadjacent servo tracks.
- 109. The data storage medium of claim 107, wherein the time based servo features comprise a pattern selected from a chevron and a vee.
- 110. A data storage cartridge, comprising:
(a) a housing; and (b) a data storage medium contained in the housing, said medium comprising servo information that includes first and second kinds of encoded servo features.
- 111. The data storage medium of claim 110, wherein the servo information comprises amplitude based servo features and time based servo features.
- 112. The data storage medium of claim 111, wherein the servo information comprises azimuth style servo tracks formed in one or more track following sectors and time based servo features formed in one or more identification sectors.
- 113. The data storage medium of claim 112, wherein each of said servo tracks comprises azimuthal servo transitions having an azimuthal orientation that alternates from servo track to adjacent servo track, and wherein the time based servo features comprise a first cant oriented at an azimuth angle corresponding to that of two or more nonadjacent servo tracks and a second cant oriented at an opposite azimuth angle corresponding to two or more nonadjacent servo tracks.
- 114. The data storage medium of claim 111, wherein the time based servo features comprise a pattern selected from a chevron and a vee.
- 115. A data storage system comprising:
(a) a data storage medium comprising servo information that includes first and second kinds of encoded servo features and data information; (b) at least one servo sensor operationally that engages the data storage medium in a manner effective to read the servo information; and (c) at least one data sensor operationally that engages the data storage medium in a manner effective to read the data information.
- 116. The data storage system of claim 115, wherein the servo information comprises a plurality of azimuth style servo tracks and a plurality of azimuth style data tracks.
- 117. The data storage system of claim 116, wherein the servo sensor and the data sensor are oriented at an azimuth angle corresponding to a corresponding azimuth style servo and data track, respectively, being read.
- 118. The data storage system of claim 117, wherein the azimuth oriented servo and data sensors are co-linear with each other.
- 119. The data storage system of claim 117, wherein the servo tracks are grouped into spaced apart servo bands and the data tracks are grouped into data groups positioned between adjacent servo bands.
- 120. The data storage system of claim 119, wherein the servo bands and data groups are oriented into data servo groups comprising a data group and first and second adjacent servo bands.
- 121. The data storage system of claim 115, wherein the servo information comprises identification sectors comprising servo information selected from the group consisting of track ID information, data group ID information, and track and data group ID information.
- 122. A method of writing servo information onto a data storage medium, comprising the steps of writing a first kind of servo information onto the data storage medium that provides track following information and writing a second kind of servo information onto the data storage medium that provides identification information.
- 123. A data storage medium, comprising
(a) a plurality of servo tracks; and (b) a plurality of data tracks; and (c) wherein the data tracks have a track pitch Td and the servo tracks have a track pitch Ts, wherein Ts=mTd, wherein m is greater than 1.
- 124. The data storage medium of claim 123, wherein m is an integer.
- 125. The data storage medium of claim 124, wherein m is 2.
- 126. The data storage medium of claim 123, wherein the servo tracks comprise azimuth style servo features.
- 127. The data storage medium of claim 126, wherein the data tracks comprise azimuth style data features.
- 128. The data storage medium of claim 123, wherein the servo tracks comprise first and second kinds of encoded features.
- 129. The data storage medium of claim 123, wherein the servo tracks comprise amplitude based servo features and time based servo features.
- 130. The data storage medium of claim 123, wherein a servo track comprises amplitude based servo features and time based servo features.
- 131. A data storage system, comprising:
(a) a data storage medium, comprising
(i) a plurality of azimuth style servo tracks having a track pitch Ts; and (ii) a plurality of azimuth style data tracks having a track pitch Td wherein Ts=mTd, wherein m is greater than 1; (c) a first servo sensor that readingly engages the plurality of servo tracks; and (d) a first data sensor that readingly engages the plurality of data tracks.
- 132. The data storage system of claim 131, further comprising a second servo sensor, wherein the first and second servo sensors are constituents of a centertapped servo read head.
- 133. The data storage system of claim 132, wherein the centertapped servo read head has a centertap with a width W, wherein W=n Td, and wherein n is>1.
- 134. The data storage system of claim 133, wherein the centertap is sufficiently wide such that the first and second servo sensors engage nonadjacent servo tracks.
- 135. The data storage system of claim 134, wherein the first and second servo sensors engage nonadjacent servo tracks having servo features having a similar azimuth orientation.
- 136. The data storage system of claim 131, wherein the servo tracks comprise first and second kinds of servo information.
- 137. The data storage system of claim 131, wherein the servo tracks comprise amplitude based servo features and time based servo features.
- 138. The data storage system of claim 131, wherein the first servo sensor is oriented at an azimuth angle similar to an azimuth angle of a servo feature.
- 139. The data storage system of claim 131, wherein the data sensor is oriented at an azimuth angle similar to an azimuth angle of a data feature.
- 140. The data storage system of claim 131, wherein the first servo sensor is oriented at an azimuth angle similar to an azimuth angle of a servo feature, and wherein the data sensor is oriented at an azimuth angle similar to an azimuth angle of a data feature.
- 141. The data storage system of claim 140, wherein the first servo sensor and the data sensor are co-linear.
- 142. A method of making a compound servo writer head, comprising the steps of:
(a) providing a first servo writer head portion, comprising:
(i) first and second sub-pole members; and (ii) a first sub-gap member interposed between the first and second sub-pole members; (iii) a first magnetically permeable layer formed over the first and second sub-pole members and the first sub-gap member; (iv) at least a first servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the first sub-gap member; and (v) a first coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the first servo writing gap pattern can be written in a data storage medium; (b) providing a second servo writer head portion, comprising:
(i) third and fourth sub-pole members; and (ii) a second sub-gap member interposed between the third and fourth sub-pole members; (iii) a second magnetically permeable layer formed over the third and fourth sub-pole members and the second sub-gap member; (iv) at least a second servo writing gap pattern formed in a portion of the magnetically permeable layer overlying the second sub-gap member; and (v) a second coil energizingly coupled to the substrate in a manner such that a magnetic flux pattern corresponding to the second servo writing gap pattern can be written in a data storage medium; and (c) mechanically assembling the first and second servo writer head portions to form the compound head in a manner such that the first and second servo writing gap patterns are in a predetermined spatial relationship with respect to each other on a data storage media engaging surface of the compound servo writer head.
- 143. The method of claim 142, wherein the first and second servo writing gap patterns are in the same channel.
- 144. The method of claim 142, wherein the head comprises a plurality of channels.
- 145. The method of claim 142, wherein each of the first and second head portions is independently energizable.
- 146. The method of claim 142, wherein the first servo pattern comprises a zigzag pattern having at least three legs.
- 147. A method of recording servo information, comprising the step of using the servo writer head made in accordance with the method of claim 142 to write servo information in a data storage medium.
- 148. The method of claim 147, wherein said using step comprises writing at least one servo band on a data storage medium, wherein the servo band comprises a plurality of azimuth style servo tracks.
- 149. The method of claim 148, wherein said azimuth style servo tracks are written in at least one track following sector and wherein the servo band further comprises a sector selected from the group consisting of a track ID sector, a data group ID sector, and a track and data group ID sector.
- 150. The method of claim 147, wherein said servo information comprises amplitude based servo features and time based servo features.
- 151. The method of claim 150 wherein said amplitude and time based servo features are written into different sectors of a servo band.
- 152. The method of claim 150, wherein said amplitude and time based servo features are written into the same sector of a servo band.
PRIORITY CLAIM
[0001] The present non-provisional Application claims priority under 35 USC §119(e) from U.S. Provisional Patent Application having serial No. 60/469,519, filed on May 9, 2003, by Dugas et al. and titled SERVO FORMAT FOR AZIMUTH RECORDING; U.S. Provisional Patent Application having serial No. 60/509,031, filed on Oct. 6, 2003, by Dugas et al. and titled SERVO FORMAT FOR AZIMUTH RECORDING; and U.S. Provisional Patent Application having serial No. 60/469,517, filed on May 9, 2003, by Dugas et al. and titled SERVO BAND WITH ZIGZAG TRANSITIONS FOR AZIMUTH RECORDING IN LINEAR TAPE; wherein each of these provisional Applications is commonly owned by the assignee of the present application and wherein the entire contents of each is incorporated herein by reference.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60469519 |
May 2003 |
US |
|
60509031 |
Oct 2003 |
US |
|
60469517 |
May 2003 |
US |