Detection device, inspection device, magnetic tape cartridge, magnetic tape, magnetic tape drive, magnetic tape system, detection method, inspection method, and program
The detection device on magnetic tapes corrects tape tension and skew angle by using reference servo patterns to enhance data reading and writing accuracy, addressing errors in existing technologies.
Patent Information
- Application Number
- JP2021211560
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-24
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2041-12-24
AI Technical Summary
Existing magnetic tape devices experience read and/or write errors due to improper tape tension and skew angle during movement over the head, leading to inaccurate data tracking.
A detection device that records reference servo patterns on the magnetic tape, compares them with ideal waveform signals, and adjusts tape tension and skew angle to ensure accurate data reading and writing by using a processing device to detect servo patterns with high precision.
Enhances the accuracy of data reading and writing on magnetic tapes by correcting tape tension and skew angle, thereby reducing errors and improving data integrity.
Smart Images

Figure 0007767140000001 
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Abstract
Description
[Technical Field]
[0001] The technology disclosed herein relates to a detection device, an inspection device, a magnetic tape cartridge, a magnetic tape, a magnetic tape drive, a magnetic tape system, a detection method, an inspection method, and a program. [Background technology]
[0002] Patent Document 1 cites a problem in magnetic tape devices in which read and / or write errors occur when the tape does not pass over the head with the appropriate tension and / or skew angle. To solve this problem, the system described in Patent Document 1 includes a head having an array of at least one of readers and writers, a drive mechanism for passing magnetic recording tape over the head, and a skew induction mechanism coupled to the head, which adjusts the skew angle of the longitudinal axis of the array relative to a direction perpendicular to the direction in which the tape moves over the head, and a controller communicating with the head. The system described in Patent Document 1 also determines a dimensionally stable state of the tape, adjusts the skew angle in a direction away from the normal to the direction of tape movement, and reduces the tape tension across the head if the dimensionally stable state of the tape is in a contracted state.
[0003] Patent Document 2 discloses a method for reading data tracks of a magnetic tape that are subject to lateral distortion by selectively using longitudinally offset read elements. The read elements are part of a tape head that has an azimuth angle with respect to the tape, and a lateral offset is created between the read elements. This lateral offset is used to minimize the effect of lateral tape distortion.
[0004] Patent Document 3 discloses a head device including a head unit in which a plurality of magnetic elements, each of which performs at least one of reproducing data recorded on a plurality of data tracks provided on a magnetic tape and recording data to each data track, are arranged side by side at equal intervals on a first straight line, a movement mechanism for moving the head unit, and a control unit for performing tracking control to move the head unit relative to the movement mechanism so as to bring each magnetic element onto track with each of the data tracks. In the head device described in Patent Document 3, the movement mechanism is configured to be capable of rotational driving to rotate the head unit in a direction that increases or decreases the angle between the first straight line and a second straight line that runs along the width of the magnetic tape, and the control unit, during tracking control, rotationally drives the head unit relative to the movement mechanism by an amount of increase or decrease in angle corresponding to a change in the spacing between each data track, to bring each magnetic element onto track with each data track. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] U.S. Patent No. 8,094,402 [Patent Document 2] U.S. Patent No. 6,781,784 [Patent Document 3] Japanese Patent Application Laid-Open No. 2009-123288 Summary of the Invention
[0006] One embodiment of the disclosed technology provides a detection device, an inspection device, a magnetic tape cartridge, a magnetic tape, a magnetic tape drive, a magnetic tape system, a detection method, an inspection method, and a program that can detect servo pattern signals with high accuracy. [Means for solving the problem]
[0007] A first aspect of the technology disclosed herein is a detection device comprising a processing device and a storage medium, wherein the processing device stores the result of a reference servo pattern being read by a servo read element from a magnetic tape on which the reference servo pattern is recorded in the storage medium as an ideal waveform signal indicating an ideal waveform, obtains a servo band signal which is the result of the servo pattern recorded in a servo band of the magnetic tape being read by the servo read element, and detects the servo pattern signal which is the result of the servo pattern being read by the servo read element by comparing the ideal waveform signal stored in the storage medium with the servo band signal, wherein the magnetic tape has a data band and the reference servo pattern is recorded in the data band.
[0008] A second aspect of the technology disclosed herein is a detection device according to the first aspect, in which a processing device causes a data recording element to erase a reference servo pattern by overwriting data in an area in a data band where the reference servo pattern is recorded.
[0009] A third aspect of the technique of the present disclosure is the detection device according to the first or second aspect, in which a plurality of reference servo patterns are recorded on the data band along the longitudinal direction of the magnetic tape.
[0010] A fourth aspect of the technique of the present disclosure is a detection device according to the third aspect, in which a plurality of reference servo patterns are recorded on the data band along the longitudinal direction from one end to the other end of the data band.
[0011] A fifth aspect of the disclosed technology is a detection device according to any one of the first to fourth aspects, in which the storage medium stores an ideal waveform signal in a state corresponding to the position of a reference servo pattern within the data band.
[0012] A sixth aspect of the technology of the present disclosure is a detection device according to any one of the first to fifth aspects, in which the servo bands are separated by frames defined based on at least one set of servo patterns, and reference servo patterns are recorded in the data bands in correspondence with the frames.
[0013] A seventh aspect of the technology of the present disclosure is a detection device according to any one of the first to sixth aspects, in which the data band has multiple sections intermittently arranged along the longitudinal direction of the magnetic tape, and the reference servo pattern is recorded in the multiple sections.
[0014] An eighth aspect of the technology disclosed herein is a detection device according to the seventh aspect, in which multiple sections are arranged longitudinally across locations that have been pre-designated as locations where the width of the magnetic tape is deformed.
[0015] A ninth aspect of the technique of the present disclosure is the detection device according to the seventh or eighth aspect, in which the multiple sections are provided at regular intervals along the longitudinal direction of the magnetic tape.
[0016] A tenth aspect of the disclosed technology is a detection device according to any one of the first to ninth aspects, in which the reference servo pattern is recorded between the BOT section and the EOT section in the data band.
[0017] An eleventh aspect of the technology disclosed herein is a detection device according to any one of the first to tenth aspects, in which the reference servo pattern is further recorded in at least one of the BOT section and the EOT section.
[0018] A twelfth aspect of the disclosed technology is a detection device according to any one of the first to eleventh aspects, in which the ideal waveform signal is a signal indicating a statistical value of the result of reading a reference servo pattern.
[0019] A thirteenth aspect of the technique of the present disclosure is a detection device according to any one of the first to twelfth aspects, in which the geometric characteristics of the reference servo pattern correspond to the geometric characteristics of the servo pattern.
[0020] A fourteenth aspect of the technology disclosed herein is a detection device according to any one of the first to thirteenth aspects, wherein the reference servo pattern is at least one pair of first linear magnetization regions, the pair of first linear magnetization regions being a linearly magnetized first linear magnetization region and a linearly magnetized second linear magnetization region, the first linear magnetization region and the second linear magnetization region being inclined in opposite directions with respect to a first virtual line along the width direction of the magnetic tape, the ideal waveform signal being classified into a first ideal waveform signal and a second ideal waveform signal, the first ideal waveform signal being a signal indicating the result of the first linear magnetization region being read by a servo read element, and the second ideal waveform signal being a signal indicating the result of the second linear magnetization region being read by the servo read element.
[0021] A 15th aspect of the technology disclosed herein is a detection device according to the 14th aspect, in which the servo pattern is at least one pair of second linear magnetization regions, the second pair of linear magnetization regions being a linearly magnetized third linear magnetization region and a linearly magnetized fourth linear magnetization region, the third linear magnetization region and the fourth linear magnetization region being inclined in opposite directions with respect to a first virtual line along the width direction of the magnetic tape, the servo pattern signal having a first signal resulting from the third linear magnetization region being read by a servo read element and a second signal resulting from the fourth linear magnetization region being read by the servo read element, the processing device having a first detection circuit and a second detection circuit connected in parallel, the first detection circuit acquiring a servo band signal and detecting the first signal by comparing the servo band signal with a first ideal waveform signal, and the second detection circuit acquiring the servo band signal and detecting the second signal by comparing the servo band signal with the second ideal waveform signal.
[0022] A sixteenth aspect of the technique of the present disclosure is the detection device according to any one of the first to fifteenth aspects, in which the processing device detects the servo pattern signal using an autocorrelation coefficient.
[0023] A 17th aspect of the technology of the present disclosure is a detection device according to any one of the first to sixteenth aspects, in which the magnetic tape is housed in a cartridge, and the cartridge is provided with a non-contact storage medium capable of communicating with the processing device non-contactly as a storage medium.
[0024] An eighteenth aspect of the technique of the present disclosure is the detection device according to any one of the first to seventeenth aspects, in which the storage medium is a magnetic tape.
[0025] A 19th aspect of the technology of the present disclosure is a magnetic tape cartridge comprising a memory storing an ideal waveform signal that is compared with a servo band signal by a processing device included in a detection device according to any one of the first to eighteenth aspects, and a magnetic tape.
[0026] A twentieth aspect of the technology of the present disclosure is a magnetic tape storing an ideal waveform signal that is compared with a servo band signal by a processing device included in a detection device relating to any one of the first to eighteenth aspects.
[0027] A twenty-first aspect according to the technique of the present disclosure is the magnetic tape according to the twentieth aspect, which has a BOT section and / or an EOT section, and in which an ideal waveform signal is stored in the BOT section and / or the EOT section.
[0028] A twenty-second aspect of the technique of the present disclosure is a magnetic tape according to the twentieth or twenty-first aspect, in which a data band is formed and an ideal waveform signal is stored in the data band.
[0029] A 23rd aspect of the disclosed technology is a magnetic tape comprising a servo band and a data band, wherein a servo pattern is recorded in the servo band and a reference servo pattern to be read by a servo read element is recorded in the data band, and an ideal waveform signal indicating an ideal waveform, which is the result of the reference servo pattern being read by the servo read element, is compared with a servo band signal which is the result of the servo band being read by the servo read element.
[0030] A twenty-fourth aspect of the technique of the present disclosure is a magnetic tape cartridge containing the magnetic tape according to any one of the twentieth to twenty-third aspects.
[0031] A 25th aspect of the technology of the present disclosure is an inspection device comprising a detection device according to any one of the first to eighteenth aspects, and an inspection processor that inspects a servo band on a magnetic tape in which a servo pattern is recorded based on a servo pattern signal detected by the detection device.
[0032] A 26th aspect of the technology disclosed herein is a magnetic tape drive comprising a detection device according to any one of the first to eighteenth aspects and a magnetic head that operates in accordance with the servo pattern signal detected by the detection device.
[0033] A 27th aspect of the technology of the present disclosure is a magnetic tape system comprising a magnetic tape drive having a detection device according to any one of the first to eighteenth aspects, a magnetic head that operates in accordance with the servo pattern signal detected by the detection device, and a magnetic tape that is magnetically processed by the magnetic head.
[0034] A 28th aspect of the technology of the present disclosure is a detection method that includes storing the result of reading a reference servo pattern by a servo read element from a magnetic tape on which the reference servo pattern is recorded as an ideal waveform signal indicating an ideal waveform in a storage medium, acquiring a servo band signal that is the result of the servo pattern recorded in the servo band of the magnetic tape being read by the servo read element, and detecting the servo pattern signal that is the result of the servo pattern being read by the servo read element by comparing the ideal waveform signal stored in the storage medium with the servo band signal, wherein the magnetic tape has a data band and the reference servo pattern is recorded in the data band.
[0035] A 29th aspect of the technology of the present disclosure is an inspection method that includes inspecting a servo band on a magnetic tape in which a servo pattern is recorded, based on a servo pattern signal detected by a detection method according to the 28th aspect.
[0036] A 30th aspect of the technology of the present disclosure is a program for causing a computer to execute processing, the processing including storing the result of reading a reference servo pattern by a servo read element from a magnetic tape on which the reference servo pattern is recorded as an ideal waveform signal indicating an ideal waveform in a storage medium, acquiring a servo band signal which is the result of the servo pattern recorded in the servo band of the magnetic tape being read by the servo read element, and detecting the servo pattern signal which is the result of the servo pattern being read by the servo read element by comparing the ideal waveform signal stored in the storage medium with the servo band signal, wherein the magnetic tape has a data band and the reference servo pattern is recorded in the data band. [Brief explanation of the drawings]
[0037] [Figure 1] 1 is a block diagram showing an example of the configuration of a magnetic tape system according to an embodiment; [Figure 2]1 is a schematic perspective view showing an example of the appearance of a magnetic tape cartridge according to an embodiment. [Figure 3] FIG. 1 is a schematic diagram illustrating an example of a hardware configuration of a magnetic tape drive according to an embodiment. [Figure 4] 1 is a schematic perspective view showing an example of a magnetic field emitted by a non-contact read / write device from the bottom side of a magnetic tape cartridge according to an embodiment. FIG. [Figure 5] FIG. 1 is a schematic diagram illustrating an example of a hardware configuration of a magnetic tape drive according to an embodiment. [Figure 6] 1 is a conceptual diagram showing an example of a state in which a magnetic head is disposed on a magnetic tape according to an embodiment, as observed from the surface side of the magnetic tape. [Figure 7] 1A and 1B are conceptual diagrams showing an example of a state in which a magnetic tape according to an embodiment is observed from the surface side of the magnetic tape before and after the width of the magnetic tape is reduced. [Figure 8] FIG. 2 is a conceptual diagram showing an example of a state in which a magnetic head is skewed on a magnetic tape according to an embodiment, as observed from the surface side of the magnetic tape. [Figure 9] FIG. 2 is a conceptual diagram illustrating an example of functions of a processing device included in a magnetic tape drive according to an embodiment. [Figure 10] FIG. 2 is a conceptual diagram showing an example of processing contents of a first position detection device of a processing device included in a magnetic tape drive according to an embodiment. [Figure 11] FIG. 2 is a conceptual diagram showing an example of processing contents of a control device of a processing device included in a magnetic tape drive according to an embodiment. [Figure 12] A conceptual diagram showing an example of a state in which multiple reference servo patterns are recorded in a data band of a magnetic tape according to an embodiment, and an example of a state of a reference signal that is the result of the reference servo patterns being read by a servo read element. [Figure 13] FIG. 10 is a conceptual diagram showing an example of how an ideal waveform signal is generated from a reference signal by a control device of a magnetic tape drive according to an embodiment and stored in storage. [Figure 14]FIG. 10 is a conceptual diagram showing an example of how data is overwritten on a reference servo pattern according to the embodiment. [Figure 15] FIG. 2 is a conceptual diagram showing an example of the configuration of a servo writer according to the embodiment. [Figure 16] 10 is a flowchart illustrating an example of the flow of a servo pattern detection process according to the embodiment. [Figure 17] 10 is a flowchart illustrating an example of the flow of an ideal waveform signal acquisition process according to the embodiment. [Figure 18] 10 is a flowchart showing an example of the flow of a reference servo pattern erasing process according to the embodiment. [Figure 19] FIG. 10 is a conceptual diagram showing a modified example of the reference servo pattern. [Figure 20] FIG. 20 is a conceptual diagram showing an example of a manner in which an ideal waveform signal is generated from a reference signal that is the result of the reference servo pattern shown in FIG. 19 being read by a servo read element, and is stored in storage. [Figure 21] FIG. 1 is a conceptual diagram showing an example of the surface of a magnetic tape on which a plurality of ideal waveform signal acquisition sections are intermittently provided. [Figure 22] This is a conceptual diagram showing a first modified example, and a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 23] FIG. 10 is a conceptual diagram showing a first modified example, illustrating an example of the relationship between the geometric characteristics of an actual servo pattern and the geometric characteristics of a virtual servo pattern. [Figure 24] This is a conceptual diagram showing a first modified example, which shows an example of a state in which corresponding frames between adjacent servo bands in the width direction of the magnetic tape are shifted by a predetermined interval, as observed from the surface side of the magnetic tape. [Figure 25] This is a conceptual diagram showing the first modified example, which is a conceptual diagram showing an example of the state in which a servo pattern is read by a servo read element included in a magnetic head that is not skewed on the magnetic tape, observed from the surface side of the magnetic tape. [Figure 26]This is a conceptual diagram showing a first modified example, and is a conceptual diagram showing an example of the state in which a servo pattern is read by a servo read element included in a magnetic head skewed above the magnetic tape, observed from the surface side of the magnetic tape. [Figure 27] This is a conceptual diagram showing a second modified example, and is a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 28] FIG. 10 is a conceptual diagram showing a second modified example, illustrating an example of a form of a servo pattern included in a magnetic tape. [Figure 29] This is a conceptual diagram showing a third modified example, and is a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 30] FIG. 10 is a conceptual diagram showing a third modified example, illustrating an example of a form of a servo pattern included in a magnetic tape. [Figure 31] This is a conceptual diagram showing a fourth modified example, and is a conceptual diagram showing an example of a state in which corresponding frames between adjacent servo bands in the width direction of the magnetic tape of the embodiment are shifted by a predetermined interval, as observed from the surface side of the magnetic tape. [Figure 32] This is a conceptual diagram showing a fifth modified example, and is a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 33] FIG. 13 is a conceptual diagram showing a fifth modified example, illustrating an example of the relationship between the geometric characteristics of an actual servo pattern and the geometric characteristics of a virtual servo pattern. [Figure 34] This is a conceptual diagram showing the fifth modified example, which shows an example of a state in which corresponding frames between adjacent servo bands in the width direction of the magnetic tape are shifted by a predetermined interval, as observed from the surface side of the magnetic tape. [Figure 35]This is a conceptual diagram showing the fifth modified example, which is a conceptual diagram showing an example of the state in which a servo pattern is read by a servo read element included in a magnetic head skewed above the magnetic tape, observed from the surface side of the magnetic tape. [Figure 36] This is a conceptual diagram showing a sixth modified example, and a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 37] FIG. 13 is a conceptual diagram showing a sixth modified example, illustrating an example of a form of a servo pattern included in a magnetic tape. [Figure 38] This is a conceptual diagram showing a seventh modified example, and a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 39] FIG. 13 is a conceptual diagram showing a seventh modified example, illustrating an example of a mode of a servo pattern included in a magnetic tape. [Figure 40] This is a conceptual diagram showing an eighth modified example, a conceptual diagram showing a modified example of the magnetic tape according to the embodiment (a conceptual diagram showing an example of the magnetic tape observed from the surface side of the magnetic tape). [Figure 41] FIG. 1 is a conceptual diagram showing an example of how a program stored in a storage medium is installed in a computer of a processing device. DETAILED DESCRIPTION OF THE INVENTION
[0038] Hereinafter, examples of embodiments of a detection device, an inspection device, a magnetic tape cartridge, a magnetic tape, a magnetic tape drive, a magnetic tape system, a detection method, an inspection method, and a program according to the techniques of the present disclosure will be described with reference to the accompanying drawings.
[0039] First, the terms used in the following description will be explained.
[0040] NVM is an abbreviation for "Non-volatile memory". CPU is an abbreviation for "Central Processing Unit". RAM is an abbreviation for "Random Access Memory". EEPROM is an abbreviation for "Electrically Erasable and Programmable Read Only Memory". SSD is an abbreviation for "Solid State Drive". HDD is an abbreviation for "Hard Disk Drive". ASIC is an abbreviation for "Application Specific Integrated Circuit". FPGA is an abbreviation for "Field-Programmable Gate Array". PLC is an abbreviation for "Programmable Logic Controller". SoC is an abbreviation for "System-on-a-chip". IC is an abbreviation for "Integrated Circuit". RFID is an abbreviation for "Radio Frequency Identifier". BOT is an abbreviation for "Beginning Of Tape". EOT is an abbreviation for "End Of Tape". UI is an abbreviation for "User Interface". WAN is an abbreviation for "Wide Area Network." LAN is an abbreviation for "Local Area Network." In the following description, geometric characteristics refer to commonly recognized geometric characteristics such as length, shape, orientation, and / or position.
[0041] As an example, as shown in Figure 1, a magnetic tape system 10 includes a magnetic tape cartridge 12 and a magnetic tape drive 14. The magnetic tape cartridge 12 is loaded into the magnetic tape drive 14. The magnetic tape cartridge 12 contains a magnetic tape MT. The magnetic tape drive 14 pulls out the magnetic tape MT from the loaded magnetic tape cartridge 12 and, while running the pulled-out magnetic tape MT, records data on the magnetic tape MT and reads data from the magnetic tape MT.
[0042] In this embodiment, the magnetic tape MT is an example of a "magnetic tape" according to the technology of the present disclosure. Also, in this embodiment, the magnetic tape system 10 is an example of a "magnetic tape system" according to the technology of the present disclosure. Also, in this embodiment, the magnetic tape drive 14 is an example of a "magnetic tape drive" according to the technology of the present disclosure. Also, in this embodiment, the magnetic tape cartridge 12 is an example of a "cartridge" and a "magnetic tape cartridge" according to the technology of the present disclosure.
[0043] Next, an example of the configuration of the magnetic tape cartridge 12 will be described with reference to Figures 2 to 4. In the following description, for convenience of explanation, the loading direction of the magnetic tape cartridge 12 into the magnetic tape drive 14 is indicated by arrow A in Figures 2 to 4, the direction of arrow A is the front direction of the magnetic tape cartridge 12, and the front side of the magnetic tape cartridge 12 is the front side of the magnetic tape cartridge 12. In the following description of the structure, "front" refers to the front side of the magnetic tape cartridge 12.
[0044] 2 to 4, for convenience of explanation, the direction of arrow B, which is perpendicular to the direction of arrow A, is defined as the right direction, and the right side of the magnetic tape cartridge 12 is defined as the right side of the magnetic tape cartridge 12. In the following description of the structure, "right" refers to the right side of the magnetic tape cartridge 12.
[0045] 2 to 4, for convenience of explanation, the direction opposite to the direction of arrow B is referred to as the left direction, and the left side of the magnetic tape cartridge 12 is referred to as the left side of the magnetic tape cartridge 12. In the following explanation of the structure, "left" refers to the left side of the magnetic tape cartridge 12.
[0046] 2 to 4, for convenience of explanation, the direction perpendicular to the directions of arrows A and B is indicated by arrow C, the direction of arrow C is the upward direction of the magnetic tape cartridge 12, and the upward side of the magnetic tape cartridge 12 is the upper side of the magnetic tape cartridge 12. In the explanation of the structure below, "upper" refers to the upper side of the magnetic tape cartridge 12.
[0047] 2 to 4, for convenience of explanation, the direction opposite to the front direction of the magnetic tape cartridge 12 is referred to as the rear direction of the magnetic tape cartridge 12, and the rear side of the magnetic tape cartridge 12 is referred to as the rear side of the magnetic tape cartridge 12. In the following description of the structure, "rear" refers to the rear side of the magnetic tape cartridge 12.
[0048] 2 to 4, for convenience of explanation, the direction opposite to the upper direction of the magnetic tape cartridge 12 is referred to as the lower direction of the magnetic tape cartridge 12, and the lower side of the magnetic tape cartridge 12 is referred to as the lower side of the magnetic tape cartridge 12. In the following description of the structure, "lower" refers to the lower side of the magnetic tape cartridge 12.
[0049] As an example, as shown in Figure 2, the magnetic tape cartridge 12 has a box-like case 16 that is generally rectangular in plan view. The case 16 houses a magnetic tape MT. The case 16 is made of resin such as polycarbonate and has an upper case 18 and a lower case 20. The upper case 18 and the lower case 20 are joined by welding (for example, ultrasonic welding) and screw fastening, with the lower peripheral surface of the upper case 18 and the upper peripheral surface of the lower case 20 in contact with each other. The joining method is not limited to welding and screw fastening, and other joining methods may also be used.
[0050] The supply reel 22 is rotatably housed inside the case 16. The supply reel 22 includes a reel hub 22A, an upper flange 22B1, and a lower flange 22B2. The reel hub 22A is cylindrical. The reel hub 22A is the axial center of the supply reel 22, and its axial direction is aligned with the vertical direction of the case 16, and it is disposed in the center of the case 16. The upper flange 22B1 and the lower flange 22B2 are each formed in an annular shape. The center of the upper flange 22B1 in a plan view is fixed to the upper end of the reel hub 22A, and the center of the lower flange 22B2 in a plan view is fixed to the lower end of the reel hub 22A. The reel hub 22A and the lower flange 22B2 may be integrally molded.
[0051] A magnetic tape MT is wound around the outer peripheral surface of the reel hub 22A, and the widthwise ends of the magnetic tape MT are held by an upper flange 22B1 and a lower flange 22B2.
[0052] An opening 16B is formed in the front side of the right wall 16A of the case 16. The magnetic tape MT is pulled out through the opening 16B.
[0053] The lower case 20 is provided with a cartridge memory 24. Specifically, the cartridge memory 24 is housed in the right rear end portion of the lower case 20. An IC chip having an NVM is mounted on the cartridge memory 24. In this embodiment, a so-called passive RFID tag is used as the cartridge memory 24, and various pieces of information are read and written to the cartridge memory 24 in a contactless manner.
[0054] The cartridge memory 24 stores management information for managing the magnetic tape cartridge 12. The management information includes, for example, information about the cartridge memory 24 (e.g., information that can identify the magnetic tape cartridge 12), information about the magnetic tape MT (e.g., information indicating the recording capacity of the magnetic tape MT, information indicating an overview of the data recorded on the magnetic tape MT, information indicating the items of data recorded on the magnetic tape MT, information indicating the recording format of the data recorded on the magnetic tape MT, etc.), and information about the magnetic tape drive 14 (e.g., information indicating the specifications of the magnetic tape drive 14 and signals used in the magnetic tape drive 14). The cartridge memory 24 is an example of a "non-contact storage medium" and a "memory" according to the techniques of the present disclosure.
[0055] 3, the magnetic tape drive 14 includes a controller 25, a transport device 26, a magnetic head 28, a UI device 34, and a communication interface 35. The controller 25 is an example of a "detection device" according to the technology of the present disclosure, and includes a processing device 30 and storage 32. The processing device 30 is an example of a "processing device" according to the technology of the present disclosure, and the storage 32 is an example of a "storage medium" according to the technology of the present disclosure.
[0056] A magnetic tape cartridge 12 is loaded into the magnetic tape drive 14 in the direction of arrow A. In the magnetic tape drive 14, the magnetic tape MT is pulled out from the magnetic tape cartridge 12 and used.
[0057] The magnetic tape MT includes a magnetic layer 29A, a base film 29B, and a backcoat layer 29C. The magnetic layer 29A is formed on one side of the base film 29B, and the backcoat layer 29C is formed on the other side of the base film 29B. Data is recorded in the magnetic layer 29A. The magnetic layer 29A contains ferromagnetic powder. Examples of the ferromagnetic powder include ferromagnetic powders commonly used in the magnetic layers of various magnetic recording media. A preferred example of the ferromagnetic powder is hexagonal ferrite powder. Examples of the hexagonal ferrite powder include hexagonal strontium ferrite powder and hexagonal barium ferrite powder. The backcoat layer 29C is a layer containing a nonmagnetic powder such as carbon black. The base film 29B, also referred to as a support, is made of, for example, polyethylene terephthalate, polyethylene naphthalate, or polyamide. A nonmagnetic layer may be formed between the base film 29B and the magnetic layer 29A. In the magnetic tape MT, the surface on which the magnetic layer 29A is formed is the front surface 31 of the magnetic tape MT, and the surface on which the backcoat layer 29C is formed is the back surface 33 of the magnetic tape MT.
[0058] The magnetic tape drive 14 performs magnetic processing on the surface 31 of the magnetic tape MT using the magnetic head 28. Here, magnetic processing refers to recording data on the surface 31 of the magnetic tape MT and reading data from the surface 31 of the magnetic tape MT (i.e., reproducing data). In this embodiment, the magnetic tape drive 14 selectively records data on the surface 31 of the magnetic tape MT and reads data from the surface 31 of the magnetic tape MT using the magnetic head 28. That is, the magnetic tape drive 14 pulls out the magnetic tape MT from the magnetic tape cartridge 12 and uses the magnetic head 28 to record data on the surface 31 of the pulled-out magnetic tape MT, or uses the magnetic head 28 to read data from the surface 31 of the pulled-out magnetic tape MT.
[0059] The processing device 30 controls the entire magnetic tape drive 14. In this embodiment, the processing device 30 is realized by an ASIC, but the technology of the present disclosure is not limited to this. For example, the processing device 30 may be realized by an FPGA and / or a PLC. The processing device 30 may also be realized by a computer including a CPU, flash memory (e.g., EEPROM and / or SSD, etc.), and RAM. The processing device 30 may also be realized by a combination of two or more of the ASIC, FPGA, PLC, and computer. In other words, the processing device 30 may be realized by a combination of hardware and software.
[0060] The storage 32 is connected to the processing device 30, and the processing device 30 writes various types of information to the storage 32 and reads various types of information from the storage 32. Examples of the storage 32 include a flash memory and / or a hard disk drive (HDD). The flash memory and the HDD are merely examples, and any non-volatile memory that can be mounted in the magnetic tape drive 14 may be used.
[0061] The UI-based device 34 is a device having a reception function for receiving an instruction signal indicating an instruction from a user and a presentation function for presenting information to the user. The reception function is realized by, for example, a touch panel, hard keys (e.g., a keyboard), and / or a mouse. The presentation function is realized by, for example, a display, a printer, and / or a speaker. The UI-based device 34 is connected to the processing device 30. The processing device 30 acquires the instruction signal received by the UI-based device 34. The UI-based device 34 presents various information to the user under the control of the processing device 30.
[0062] The communication interface 35 is connected to the processing device 30. The communication interface 35 is also connected to an external device 37 via a communication network (not shown) such as a WAN and / or LAN. The communication interface 35 controls the exchange of various information (e.g., data to be recorded on the magnetic tape MT, data read from the magnetic tape MT, and / or instruction signals given to the processing device 30) between the processing device 30 and the external device 37. The external device 37 may be, for example, a personal computer or a mainframe.
[0063] The transport device 26 is a device that selectively transports the magnetic tape MT in the forward or reverse direction along a predetermined path, and is equipped with a feed motor 36, a take-up reel 38, a take-up motor 40, and multiple guide rollers GR. Note that here, the forward direction refers to the feed direction of the magnetic tape MT, and the reverse direction refers to the rewind direction of the magnetic tape MT.
[0064] The supply motor 36 rotates the supply reel 22 in the magnetic tape cartridge 12 under the control of the processing device 30. The processing device 30 controls the supply motor 36 to control the rotation direction, rotation speed, rotation torque, etc. of the supply reel 22.
[0065] The take-up motor 40 rotates the take-up reel 38 under the control of the processing device 30. The processing device 30 controls the take-up motor 40 to control the rotation direction, rotation speed, rotation torque, etc. of the take-up reel 38.
[0066] When the magnetic tape MT is wound by the take-up reel 38, the processing device 30 rotates the supply motor 36 and the take-up motor 40 so that the magnetic tape MT runs in the forward direction along a predetermined path. The rotational speed, rotational torque, etc. of the supply motor 36 and the take-up motor 40 are adjusted according to the speed at which the magnetic tape MT is wound onto the take-up reel 38. Furthermore, tension is imparted to the magnetic tape MT by adjusting the rotational speed, rotational torque, etc. of each of the supply motor 36 and the take-up motor 40 by the processing device 30. Furthermore, the tension imparted to the magnetic tape MT is controlled by adjusting the rotational speed, rotational torque, etc. of each of the supply motor 36 and the take-up motor 40 by the processing device 30.
[0067] When the magnetic tape MT is rewound onto the supply reel 22, the processing device 30 rotates the supply motor 36 and the take-up motor 40 so that the magnetic tape MT travels in the reverse direction along the predetermined path.
[0068] In this embodiment, the tension applied to the magnetic tape MT is controlled by controlling the rotational speed and rotational torque of the supply motor 36 and the take-up motor 40, but the technology of the present disclosure is not limited to this. For example, the tension applied to the magnetic tape MT may be controlled using a dancer roller, or may be controlled by drawing the magnetic tape MT into a vacuum chamber.
[0069] Each of the guide rollers GR guides the magnetic tape MT. The predetermined path, i.e., the travel path of the magnetic tape MT, is determined by disposing the guide rollers GR at separate positions across the magnetic head 28 between the magnetic tape cartridge 12 and the take-up reel 38.
[0070] The magnetic head 28 includes a magnetic element unit 42 and a holder 44. The magnetic element unit 42 is held by the holder 44 so as to come into contact with the running magnetic tape MT. The magnetic element unit 42 has a plurality of magnetic elements.
[0071] The magnetic element unit 42 records data on the magnetic tape MT transported by the transport device 26, and reads data from the magnetic tape MT transported by the transport device 26. Here, data refers to, for example, the servo patterns 52 (see FIG. 6) and data other than the servo patterns 52, i.e., data recorded in the data band DB (see FIG. 6).
[0072] The magnetic tape drive 14 is equipped with a non-contact read / write device 46. The non-contact read / write device 46 is disposed below the magnetic tape cartridge 12 when the magnetic tape cartridge 12 is loaded so as to directly face the back surface 24A of the cartridge memory 24, and reads and writes information from and to the cartridge memory 24 in a non-contact manner.
[0073] 4, the non-contact read / write device 46 emits a magnetic field MF from the bottom side of the magnetic tape cartridge 12 toward the cartridge memory 24. The magnetic field MF penetrates the cartridge memory 24.
[0074] The non-contact read / write device 46 is connected to the processing device 30. The processing device 30 outputs a control signal to the non-contact read / write device 46. The control signal is a signal that controls the cartridge memory 24. The non-contact read / write device 46 generates a magnetic field MF in accordance with the control signal input from the processing device 30, and emits the generated magnetic field MF toward the cartridge memory 24.
[0075] The non-contact read / write device 46 performs contactless communication with the cartridge memory 24 via the magnetic field MF, thereby performing processing on the cartridge memory 24 in accordance with a control signal. For example, under the control of the processing device 30, the non-contact read / write device 46 selectively performs processing to read information from the cartridge memory 24 and processing to store information in the cartridge memory 24 (i.e., processing to write information to the cartridge memory 24). In other words, the processing device 30 reads information from the cartridge memory 24 and stores information in the cartridge memory 24 by communicating contactlessly with the cartridge memory 24 via the non-contact read / write device 46.
[0076] As an example, as shown in FIG. 5, the magnetic tape drive 14 includes a movement mechanism 48. The movement mechanism 48 has a movement actuator 48A. Examples of the movement actuator 48A include a voice coil motor and / or a piezoelectric actuator. The movement actuator 48A is connected to the processing device 30, which controls the movement actuator 48A. The movement actuator 48A generates power under the control of the processing device 30. The movement mechanism 48 receives the power generated by the movement actuator 48A to move the magnetic head 28 in the width direction of the magnetic tape MT.
[0077] The magnetic tape drive 14 is equipped with a tilt mechanism 49. The tilt mechanism 49 has a tilt actuator 49A. Examples of the tilt actuator 49A include a voice coil motor and / or a piezoelectric actuator. The tilt actuator 49A is connected to the processing device 30, which controls the tilt actuator 49A. The tilt actuator 49A generates power under the control of the processing device 30. By receiving the power generated by the tilt actuator 49A, the tilt mechanism 49 tilts the magnetic head 28 toward the longitudinal direction LD of the magnetic tape MT with respect to the width direction WD of the magnetic tape MT (see FIG. 8). In other words, the magnetic head 28 is skewed on the magnetic tape MT under the control of the processing device 30.
[0078] 6, for example, servo bands SB1, SB2, and SB3 and data bands DB1 and DB2 are formed on the surface 31 of the magnetic tape MT. For ease of explanation, the servo bands SB1 to SB3 will be referred to as servo bands SB, and the data bands DB1 and DB2 will be referred to as data bands DB unless a distinction is particularly required.
[0079] The servo bands SB1 to SB3 and the data bands DB1 and DB2 are formed along the longitudinal direction LD (i.e., the overall length direction) of the magnetic tape MT. Here, the overall length direction of the magnetic tape MT refers to the running direction of the magnetic tape MT. The running direction of the magnetic tape MT is defined as two directions: the forward direction (hereinafter also simply referred to as the "forward direction") in which the magnetic tape MT runs from the supply reel 22 side to the take-up reel 38 side, and the reverse direction (hereinafter also simply referred to as the "reverse direction") in which the magnetic tape MT runs from the take-up reel 38 side to the supply reel 22 side.
[0080] The servo bands SB1 to SB3 are arranged at positions spaced apart in the width direction WD of the magnetic tape MT (hereinafter also simply referred to as the "width direction WD"). For example, the servo bands SB1 to SB3 are arranged at equal intervals along the width direction WD. In this embodiment, "equal intervals" refers to not only perfectly equal intervals, but also equal intervals that include an error that is generally acceptable in the technical field to which the technology of the present disclosure belongs and that does not contradict the spirit of the technology of the present disclosure.
[0081] The data band DB1 is arranged between the servo bands SB1 and SB2, and the data band DB2 is arranged between the servo bands SB2 and SB3. In other words, the servo bands SB and the data bands DB are arranged alternately along the width direction WD.
[0082] In the example shown in Figure 6, for the sake of convenience, three servo bands SB and two data bands DB are shown, but this is merely an example, and the technology disclosed herein can be applied to two servo bands SB and one data band DB, or even to four or more servo bands SB and three or more data bands DB.
[0083] A plurality of servo patterns 52 are recorded on the servo band SB along the longitudinal direction LD of the magnetic tape MT. The servo patterns 52 are classified into servo patterns 52A and servo patterns 52B. The plurality of servo patterns 52 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT. In this embodiment, "constant" refers not only to perfect uniformity but also to uniformity that includes an error that is generally acceptable in the technical field to which the technology of the present disclosure pertains and that does not contradict the spirit of the technology of the present disclosure.
[0084] The servo band SB is divided into a plurality of frames 50 along the longitudinal direction LD of the magnetic tape MT. Each frame 50 is defined by a set of servo patterns 52. In the example shown in Fig. 6, servo patterns 52A and 52B are shown as an example of a set of servo patterns 52. The servo patterns 52A and 52B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 50, the servo pattern 52A is located on the upstream side in the forward direction, and the servo pattern 52B is located on the downstream side in the forward direction.
[0085] The servo pattern 52 is made up of linear magnetization region pairs 54. The linear magnetization region pairs 54 are examples of the "first linear magnetization region pairs" and "second linear magnetization region pairs" according to the technology of the present disclosure. The linear magnetization region pairs 54 are classified into linear magnetization region pairs 54A and linear magnetization region pairs 54B.
[0086] The servo pattern 52A is made up of a pair of linear magnetization regions 54A. In the example shown in FIG. 6, a pair of linear magnetization regions 54A1 and 54A2 is shown as an example of the pair of linear magnetization regions 54A. Each of the linear magnetization regions 54A1 and 54A2 is a linearly magnetized region. The linear magnetization region 54A1 is an example of a "first linear magnetization region" and a "third linear magnetization region" according to the technology of the present disclosure, and the linear magnetization region 54A2 is an example of a "second linear magnetization region" and a "fourth linear magnetization region" according to the technology of the present disclosure.
[0087] The linear magnetized regions 54A1 and 54A2 are inclined in opposite directions with respect to a virtual line C1, which is a virtual line along the width direction WD. In the example shown in Fig. 6, the linear magnetized regions 54A1 and 54A2 are inclined axisymmetrically with respect to the virtual line C1. More specifically, the linear magnetized regions 54A1 and 54A2 are formed non-parallel to each other and inclined at a predetermined angle (for example, 5 degrees) in opposite directions on the longitudinal direction LD side of the magnetic tape MT with the virtual line C1 as the axis of symmetry.
[0088] The linear magnetization region 54A1 is a set of five magnetized straight lines, ie, magnetization lines 54A1a, and the linear magnetization region 54A2 is a set of five magnetized straight lines, ie, magnetization lines 54A2a.
[0089] The servo pattern 52B is made up of a pair of linear magnetization regions 54B. In the example shown in FIG. 6, a pair of linear magnetization regions 54B1 and 54B2 is shown as an example of the pair of linear magnetization regions 54B. Each of the linear magnetization regions 54B1 and 54B2 is a linearly magnetized region. The linear magnetization region 54B1 is an example of a "first linear magnetization region" and a "third linear magnetization region" according to the technology of the present disclosure, and the linear magnetization region 54B2 is an example of a "second linear magnetization region" and a "fourth linear magnetization region" according to the technology of the present disclosure.
[0090] The linear magnetized regions 54B1 and 54B2 are inclined in opposite directions with respect to a virtual line C2, which is a virtual line along the width direction WD. In the example shown in Fig. 6, the linear magnetized regions 54B1 and 54B2 are inclined in line symmetry with respect to the virtual line C2. More specifically, the linear magnetized regions 54B1 and 54B2 are formed non-parallel to each other and inclined at a predetermined angle (for example, 5 degrees) in opposite directions on the longitudinal direction LD side of the magnetic tape MT with the virtual line C2 as the axis of symmetry.
[0091] The linear magnetization region 54B1 is a set of four magnetized straight lines, ie, magnetization lines 54B1a, and the linear magnetization region 54B2 is a set of four magnetized straight lines, ie, magnetization lines 54B2a.
[0092] The magnetic head 28 is disposed on the surface 31 side of the magnetic tape MT configured in this manner. The holder 44 is formed in a rectangular parallelepiped shape and is disposed so as to cross the surface 31 of the magnetic tape MT in the width direction WD. The multiple magnetic elements of the magnetic element unit 42 are linearly arranged along the longitudinal direction of the holder 44. The magnetic element unit 42 has, as its multiple magnetic elements, a pair of servo read elements SR and multiple data read / write elements DRW. The longitudinal length of the holder 44 is sufficiently long relative to the width of the magnetic tape MT. For example, the longitudinal length of the holder 44 is set to be longer than the width of the magnetic tape MT regardless of where the magnetic element unit 42 is disposed on the magnetic tape MT.
[0093] The magnetic head 28 is equipped with a pair of servo read elements SR. In the magnetic head 28, the relative positional relationship between the holder 44 and the pair of servo read elements SR is fixed. The pair of servo read elements SR consists of servo read elements SR1 and SR2. The servo read element SR1 is disposed at one end of the magnetic element unit 42, and the servo read element SR2 is disposed at the other end of the magnetic element unit 42. In the example shown in FIG. 6, the servo read element SR1 is provided at a position corresponding to the servo band SB2, and the servo read element SR2 is provided at a position corresponding to the servo band SB3.
[0094] The multiple data read / write elements DRW are arranged linearly between the servo read element SR1 and the servo read element SR2. The multiple data read / write elements DRW are arranged at intervals along the longitudinal direction of the magnetic head 28 (for example, arranged at equal intervals along the longitudinal direction of the magnetic head 28). In the example shown in FIG. 6, the multiple data read / write elements DRW are provided at positions corresponding to the data band DB2. The data read / write element DRW is an example of a "data recording element" according to the technology of the present disclosure.
[0095] The processing device 30 acquires a servo pattern signal resulting from the servo read element SR reading the servo pattern 52, and performs servo control in accordance with the acquired servo pattern signal. Here, servo control refers to control that moves the magnetic head 28 in the width direction WD of the magnetic tape MT by operating the movement mechanism 48 in accordance with the servo pattern 52 read by the servo read element SR.
[0096] By performing servo control, the plurality of data read / write elements DRW are positioned on designated areas in the data band DB and perform magnetic processing on the designated areas in the data band DB. In the example shown in Fig. 6, the plurality of data read / write elements DRW perform magnetic processing on designated areas in the data band DB2.
[0097] Furthermore, when the data band DB from which the magnetic element unit 42 reads data is changed (in the example shown in FIG. 6, when the data band DB from which the magnetic element unit 42 reads data is changed from data band DB2 to data band DB1), the movement mechanism 48, under the control of the processing device 30, moves the magnetic head 28 in the width direction WD to change the positions of the pair of servo read elements SR. That is, by moving the magnetic head 28 in the width direction WD, the movement mechanism 48 moves the servo read element SR1 to a position corresponding to servo band SB1 and moves the servo read element SR2 to a position corresponding to servo band SB2. As a result, the positions of the multiple data read / write elements DRW are changed from on data band DB2 to on data band DB1, and the multiple data read / write elements DRW perform magnetic processing on data band DB1.
[0098] Recently, research has been conducted into technologies to reduce the effects of TDS (Transverse Dimensional Stability). TDS is affected by factors such as temperature, humidity, the pressure applied to the magnetic tape around the reel, and deterioration over time. If no countermeasures are taken, TDS will increase, causing off-track (i.e., misalignment of the data read / write element DRW with respect to the track in the data band DB) when magnetic processing is performed on the data band DB.
[0099] In the example shown in FIG. 7, the width of the magnetic tape MT shrinks over time. In this case, off-track occurs. The width of the magnetic tape MT may also expand, causing off-track. That is, when the width of the magnetic tape MT shrinks or expands over time, the position of the servo read element SR relative to the servo pattern 52 deviates in the width direction WD from the predetermined position determined by design (e.g., the center position of each of the linear magnetized regions 54A1, 54A2, 54B1, and 54B2). When the position of the servo read element SR relative to the servo pattern 52 deviates in the width direction WD from the predetermined position determined by design, the accuracy of servo control decreases, and the track in the data band DB and the position of the data read / write element DRW become misaligned. As a result, magnetic processing is no longer performed on the originally intended track.
[0100] One known method for reducing the effects of TDS is to skew the magnetic head 28 on the magnetic tape MT, as shown in Figure 8, to maintain the position of the servo read element SR relative to the servo pattern 52 at a predetermined position determined by design.
[0101] The magnetic head 28 has a rotation axis RA. The rotation axis RA is located at a position corresponding to the center of the magnetic element unit 42 included in the magnetic head 28 in a planar view. The magnetic head 28 is rotatably held by a tilting mechanism 49 via the rotation axis RA. A virtual line C3, which is a virtual center line, is provided in the magnetic head 28. The virtual line C3 passes through the rotation axis RA and extends in the longitudinal direction of the magnetic head 28 in a planar view (i.e., the direction in which multiple data read / write elements DRW are arranged). The magnetic head 28 is held by the tilting mechanism 49 so that the virtual line C3 is tilted toward the longitudinal direction LD of the magnetic tape MT with respect to a virtual line C4, which is a virtual line along the width direction WD. In the example shown in FIG. 8, the magnetic head 28 is held by the tilting mechanism 49 in a position in which the virtual line C3 is tilted toward the supply reel 22 with respect to the virtual line C4 (i.e., a position inclined counterclockwise when viewed from the front side of the paper surface of FIG. 8). In the following, the angle formed by the imaginary lines C3 and C4 will also be referred to as the "skew angle." The skew angle is defined as an angle in which the counterclockwise direction when viewed from the front side of the paper in FIG. 8 is positive and the clockwise direction when viewed from the front side of the paper in FIG. 8 is negative.
[0102] The tilt mechanism 49 receives power from a tilt actuator 49A (see FIG. 5) and rotates the magnetic head 28 about the rotation axis RA on the surface 31 of the magnetic tape MT. Under the control of the processing device 30, the tilt mechanism 49 rotates the magnetic head 28 about the rotation axis RA on the surface 31 of the magnetic tape MT, thereby changing the direction and angle of tilt (i.e., azimuth) of the imaginary line C3 with respect to the imaginary line C4.
[0103] The direction and angle of inclination of the virtual line C3 relative to the virtual line C4 are changed according to temperature, humidity, the pressure at which the magnetic tape MT is wound around the reel, deterioration over time, etc., or the expansion and contraction of the magnetic tape MT in the width direction WD due to these factors, thereby maintaining the position of the servo read element SR relative to the servo pattern 52 at a predetermined position determined by design.
[0104] The servo read element SR is formed linearly along the virtual straight line C3. Therefore, when the servo read element SR reads the servo pattern 52A, the angle formed by the linear magnetized region 54A1 and the servo read element SR is different from the angle formed by the linear magnetized region 54A2 and the servo read element SR in the linear magnetized region pair 54A. This difference in angle causes variations (e.g., variations in signal level and waveform distortion) due to azimuth loss between the servo pattern signal derived from the linear magnetized region 54A1 (i.e., the servo pattern signal obtained by reading the linear magnetized region 54A1 with the servo read element SR) and the servo pattern signal derived from the linear magnetized region 54A2 (i.e., the servo pattern signal obtained by reading the linear magnetized region 54A2 with the servo read element SR). 8, the angle formed by the servo read element SR and the linear magnetized region 54A1 is larger than the angle formed by the servo read element SR and the linear magnetized region 54A2, resulting in a smaller output of the servo pattern signal and a wider waveform. This results in variations in the servo pattern signal obtained by the servo read element SR crossing the servo band SB while the magnetic tape MT is running. Furthermore, when the servo read element SR reads the servo pattern 52B, variations due to azimuth loss occur between the servo pattern signal derived from the linear magnetized region 54B1 and the servo pattern signal derived from the linear magnetized region 54B2. Such variations in the servo pattern signal can be a factor in reducing the accuracy of servo control.
[0105] One method for detecting a servo pattern signal is to use an autocorrelation coefficient to detect the servo pattern signal. In this method, an ideal waveform signal representing an ideal waveform is compared with a servo band signal (i.e., a signal representing the result of the servo band SB being read by a servo read element). The ideal waveform signal to be compared with the servo band signal is prepared in advance. However, the ideal waveform signal to be compared with the servo band signal varies depending on the type of magnetic tape (e.g., mainly the tilt of the servo pattern 52) and / or the tilt of the magnetic head 28. Furthermore, if the change over time of the magnetic tape MT and / or the tilt of the magnetic head 28 (i.e., the skew angle) deviates from the expected range, the waveform of the prepared ideal waveform signal will deviate from the waveform of the actual servo pattern signal, making it difficult to detect the servo pattern signal accurately.
[0106] In view of these circumstances, the processing device 30 (see FIGS. 3 and 9) of the controller 25 (see FIG. 3) of the magnetic tape drive 14 according to this embodiment performs a servo pattern detection process (see FIG. 16), an ideal waveform signal acquisition process (see FIG. 17), and a reference servo pattern erasure process (see FIG. 18). The servo pattern detection process, the ideal waveform signal acquisition process, and the reference servo pattern erasure process will be specifically described below.
[0107] First, an example of servo pattern detection processing will be described with reference to FIGS. 9 and 10. As an example, as shown in FIG. 9, the processing device 30 includes a control device 30A and a position detection device 30B. The position detection device 30B includes a first position detection device 30B1 and a second position detection device 30B2. The position detection device 30B acquires a servo band signal resulting from the servo band SB being read by the servo read element SR, and detects the position of the magnetic head 28 on the magnetic tape MT based on the acquired servo band signal. The servo band signal includes not only a servo pattern signal resulting from the reading of the servo pattern 52, but also signals unnecessary for servo control (e.g., noise, etc.). Therefore, in order to achieve control based on the servo pattern signal (e.g., servo control, etc.) with high accuracy, the processing device 30 needs to detect the servo pattern signal from the servo band signal with high accuracy.
[0108] The position detection device 30B acquires servo band signals from the magnetic head 28. The servo band signals are classified into a first servo band signal S1 and a second servo band signal S2. The first servo band signal S1 is a signal indicating the result of reading the servo band SB by the servo read element SR1, and the second servo band signal S2 is a signal indicating the result of reading the servo band SB by the servo read element SR2. The first position detection device 30B1 acquires the first servo band signal S1, and the second position detection device 30B2 acquires the second servo band signal S2. In the example shown in FIG. 9, an example of the first servo band signal S1 is a signal obtained by reading the servo band SB2 by the servo read element SR1, and an example of the second servo band signal S2 is a signal obtained by reading the servo band SB3 by the servo read element SR2. In the following description, for the sake of convenience, when there is no need to distinguish between the first servo band signal S1 and the second servo band signal S2, they will be referred to as "servo band signals" without being assigned reference numerals.
[0109] The first position detector 30B1 detects the position of the servo read element SR1 relative to the servo band SB2 based on the first servo band signal S1, and the second position detector 30B2 detects the position of the servo read element SR2 relative to the servo band SB3 based on the second servo band signal S2.
[0110] The control device 30A performs various controls based on the position detection result of the first position detection device 30B1 (i.e., the result of position detection by the first position detection device 30B1) and the position detection result of the second position detection device 30B2 (i.e., the result of position detection by the second position detection device 30B2). Here, the various controls refer to, for example, servo control, skew angle control, and / or tension control. Tension control refers to control of the tension applied to the magnetic tape MT (e.g., tension to reduce the effects of TDS).
[0111] Next, a description will be given of specific processing contents of the position detection device 30B. Note that the configuration of the second position detection device 30B2 is the same as the configuration of the first position detection device 30B1, so in the following, the processing contents of the position detection device 30B will be described mainly taking the specific processing contents of the first position detection device 30B1 as an example, and a description of the specific processing contents of the second position detection device 30B2 will be omitted.
[0112] For ease of explanation, the servo pattern signal derived from the linear magnetization region 54A1 or 54B1 (see FIGS. 6 to 9) will also be referred to as the "first linear magnetization region signal," and the servo pattern signal derived from the linear magnetization region 54A2 or 54B2 (see FIGS. 6 to 9) will also be referred to as the "second linear magnetization region signal." In this embodiment, the servo pattern signal is a signal composed of the first linear magnetization region signal and the second linear magnetization region signal. Therefore, detection of the first linear magnetization region signal and the second linear magnetization region signal by the position detection device 30B means that the servo pattern signal is detected by the position detection device 30B.
[0113] As an example, as shown in FIG. 10, the first position detector 30B1 includes a first detector circuit 39A and a second detector circuit 39B. The first detector circuit 39A and the second detector circuit 39B are connected in parallel and share a common input terminal 30B1a and output terminal 30B1b. In the example shown in FIG. 10, a first servo band signal S1 is input to the input terminal 30B1a. The first servo band signal S1 includes a first linear magnetization region signal S1a and a second linear magnetization region signal S1b. The first linear magnetization region signal S1a and the second linear magnetization region signal S1b are servo pattern signals (i.e., analog servo pattern signals) read by the servo read element SR1 (see FIG. 9). The same can be said for the second servo band signal S2 (see FIG. 9). That is, the servo pattern signal includes a first linear magnetization region signal S1a and a second linear magnetization region signal S1b.
[0114] The storage 32 pre-stores one ideal waveform signal 66 for each frame 50. For example, an ideal waveform signal 66 is individually associated with each of all frames 50 from the beginning to the end of the magnetic tape MT. When the servo read element SR reads the servo patterns 52 contained in each frame 50 from the beginning to the end of the magnetic tape MT, the first position detection device 30B1 acquires the ideal waveform signal 66 corresponding to each frame 50 from the storage 32 every time the servo read element SR reads the servo patterns 52 contained in each frame 50 (for example, in synchronization with the timing at which the servo read element SR starts reading the servo patterns 52), and uses the acquired ideal waveform signal 66 for comparison with the first servo band signal S1.
[0115] The ideal waveform signal 66 is a signal that indicates an ideal waveform of a servo pattern signal (i.e., an analog servo pattern signal) that is the result of the servo pattern 52 (see FIGS. 6 to 9) recorded on the servo band SB of the magnetic tape MT being read by the servo read element SR. The ideal waveform signal 66 can also be said to be a sample signal that is compared with the first servo band signal S1.
[0116] The ideal waveform signal 66 is classified into a first ideal waveform signal 66A and a second ideal waveform signal 66B. The first ideal waveform signal 66A corresponds to a signal derived from the linear magnetization region 54A2 or 54B2, i.e., the second linear magnetization region signal S1b, and is a signal that indicates the ideal waveform of the second linear magnetization region signal S1b. The second ideal waveform signal 66B corresponds to a signal derived from the linear magnetization region 54A1 or 54B1, i.e., the first linear magnetization region signal S1a, and is a signal that indicates the ideal waveform of the first linear magnetization region signal S1a. More specifically, for example, the first ideal waveform signal 66A is a signal that indicates the ideal waveform of a single pulse (i.e., one wavelength) included in the second linear magnetization region signal S1b (for example, an ideal signal that is the result of one ideal magnetization line included in the servo pattern 52 being read by the servo read element SR). Also, for example, the second ideal waveform signal 66B is a signal indicating a single (i.e., one wavelength) ideal waveform contained in the first linear magnetization region signal S1a (for example, an ideal signal resulting from one of the ideal magnetization straight lines contained in the servo pattern 52 being read by the servo read element SR).
[0117] The ideal waveform represented by the first ideal waveform signal 66A is a waveform determined according to the orientation of the magnetic head 28 on the magnetic tape MT. The relative positional relationship between the holder 44 (see FIG. 8) of the magnetic head 28 and the servo read element SR is fixed. Therefore, the ideal waveform represented by the first ideal waveform signal 66A can also be said to be a waveform determined according to the orientation of the servo read element SR on the magnetic tape MT. For example, the ideal waveform represented by the first ideal waveform signal 66A is a waveform determined according to the geometric characteristics of the linear magnetization region 54A2 of the servo pattern 52A (e.g., the geometric characteristics of the magnetization straight line 54A2a) and the orientation of the magnetic head 28 on the magnetic tape MT. As described above, since the relative positional relationship between the holder 44 (see FIG. 8) of the magnetic head 28 and the servo read element SR is fixed, the ideal waveform represented by the first ideal waveform signal 66A can also be said to be a waveform determined according to the geometric characteristics of the linear magnetized region 54A2 of the servo pattern 52A (e.g., the geometric characteristics of the magnetized straight line 54A2a) and the orientation of the servo read element SR on the magnetic tape MT. Here, the orientation of the magnetic head 28 on the magnetic tape MT refers, for example, to the angle formed between the linear magnetized region 54A2 and the magnetic head 28 on the magnetic tape MT. Furthermore, the orientation of the servo read element SR on the magnetic tape MT refers, for example, to the angle formed between the linear magnetized region 54A2 and the servo read element SR on the magnetic tape MT. In addition, the ideal waveform indicated by the first ideal waveform signal 66A may be determined taking into account, in addition to the above-mentioned factors, the characteristics of the servo read element SR itself (such as material, size, shape, and / or usage history), the characteristics of the magnetic tape MT (such as material and / or usage history), and / or the usage environment of the magnetic head 28.
[0118] Like the ideal waveform represented by the first ideal waveform signal 66A, the ideal waveform represented by the second ideal waveform signal 66B is also a waveform determined according to the orientation of the magnetic head 28 on the magnetic tape MT, i.e., a waveform determined according to the orientation of the servo read element SR on the magnetic tape MT. For example, the ideal waveform represented by the second ideal waveform signal 66B is a waveform determined according to the geometric characteristics of the linear magnetized region 54A1 of the servo pattern 52A (e.g., the geometric characteristics of the magnetization straight line 54A1a) and the orientation of the magnetic head 28 on the magnetic tape MT, i.e., a waveform determined according to the geometric characteristics of the linear magnetized region 54A1 of the servo pattern 52A (e.g., the geometric characteristics of the magnetization straight line 54A1a) and the orientation of the servo read element SR on the magnetic tape MT. Here, the orientation of the magnetic head 28 on the magnetic tape MT refers, for example, to the angle formed between the linear magnetized region 54A1 and the magnetic head 28 on the magnetic tape MT. The orientation of the servo read element SR on the magnetic tape MT refers to, for example, the angle formed between the linear magnetized region 54A1 and the servo read element SR on the magnetic tape MT. Similar to the ideal waveform represented by the first ideal waveform signal 66A, the ideal waveform represented by the second ideal waveform signal 66B may be determined taking into account, in addition to the above-mentioned factors, the characteristics of the servo read element SR itself (such as material, size, shape, and / or usage history), the characteristics of the magnetic tape MT (such as material and / or usage history), and / or the usage environment of the magnetic head 28.
[0119] The first position detection device 30B1 acquires the first servo band signal S1 and detects the servo pattern signal S1A by comparing the acquired first servo band signal S1 with the ideal waveform signal 66. In the example shown in FIG. 10, the first position detection device 30B1 detects the servo pattern signal S1A by using a first detection circuit 39A and a second detection circuit 39B. The first detection circuit 39A is an example of a "first detection circuit" according to the technology of the present disclosure, and the second detection circuit 39B is an example of a "second detection circuit" according to the technology of the present disclosure.
[0120] The first detection circuit 39A receives a first servo band signal S1 via an input terminal 30B1a. The first detection circuit 39A detects a second linear magnetization region signal S1b from the input first servo band signal S1 using an autocorrelation coefficient. The second linear magnetization region signal S1b is an example of a "first signal" according to the technology of the present disclosure.
[0121] The autocorrelation coefficient used by the first detection circuit 39A is a coefficient that indicates the degree of correlation between the first servo band signal S1 and the first ideal waveform signal 66A. The first detection circuit 39A acquires the first ideal waveform signal 66A from the storage 32 and compares the acquired first ideal waveform signal 66A with the first servo band signal S1. The first detection circuit 39A then calculates the autocorrelation coefficient based on the comparison result. The first detection circuit 39A detects a position on the servo band SB (for example, the servo band SB2 shown in FIG. 9) where there is a high correlation between the first servo band signal S1 and the first ideal waveform signal 66A (for example, a position where the first servo band signal S1 and the first ideal waveform signal 66A match) using the autocorrelation coefficient.
[0122] Meanwhile, the first servo band signal S1 is also input to the second detection circuit 39B via an input terminal 30B1a. The second detection circuit 39B detects a first linear magnetization region signal S1a from the input first servo band signal S1 using an autocorrelation coefficient. The first linear magnetization region signal S1a is an example of a "second signal" according to the technology of the present disclosure.
[0123] The autocorrelation coefficient used by the second detection circuit 39B is a coefficient that indicates the degree of correlation between the first servo band signal S1 and the second ideal waveform signal 66B. The second detection circuit 39B acquires the second ideal waveform signal 66B from the storage 32 and compares the acquired second ideal waveform signal 66B with the first servo band signal S1. The second detection circuit 39B then calculates the autocorrelation coefficient based on the comparison result. The second detection circuit 39B detects a position on the servo band SB (for example, the servo band SB2 shown in FIG. 9) where the correlation between the first servo band signal S1 and the second ideal waveform signal 66B is high (for example, a position where the first servo band signal S1 and the second ideal waveform signal 66B match) using the autocorrelation coefficient.
[0124] The first position detector 30B1 detects a servo pattern signal S1A based on the detection results of the first detector circuit 39A and the second detector circuit 39B. The first position detector 30B1 outputs the servo pattern signal S1A from an output terminal 30B1b to the controller 30A. The servo pattern signal S1A is a signal (e.g., a digital signal) indicating the logical sum of the second linear magnetization region signal S1b detected by the first detector circuit 39A and the first linear magnetization region signal S1a detected by the second detector circuit 39B.
[0125] The position of the servo read element SR relative to the servo band SB is detected based on, for example, the distance between the servo patterns 52A and 52B in the longitudinal direction LD. For example, the distance between the servo patterns 52A and 52B in the longitudinal direction LD is detected according to an autocorrelation coefficient. When the servo read element SR is located above the servo pattern 52 (i.e., above the front view of the paper in FIG. 9), the distance between the linear magnetization region 54A1 and the linear magnetization region 54A2 is narrow, and the distance between the linear magnetization region 54B1 and the linear magnetization region 54B2 is also narrow. On the other hand, when the servo read element SR is located below the servo pattern 52 (i.e., below the front view of the paper in FIG. 9), the distance between the linear magnetization region 54A1 and the linear magnetization region 54A2 is wide, and the distance between the linear magnetization region 54B1 and the linear magnetization region 54B2 is also wide. In this way, the first position detection device 30B1 detects the position of the servo read element SR relative to the servo band SB using the distance between the linear magnetization region 54A1 and the linear magnetization region 54A2, and the distance between the linear magnetization region 54B1 and the linear magnetization region 54B2, detected according to the autocorrelation coefficient.
[0126] In the example shown in Figure 10, an example is given in which the first position detection device 30B1 detects the servo pattern signal S1A by comparing the first servo band signal S1 with the ideal waveform signal 66, but similarly, the second position detection device 30B2 also detects the servo pattern signal S2A by comparing the second servo band signal S2 with the ideal waveform signal 66, and outputs the detected servo pattern signal S2A to the control device 30A.
[0127] 11, the control device 30A adjusts the position of the magnetic head 28 by operating the moving mechanism 48 based on the position detection result (i.e., servo pattern signals S1A and S2A) of the position detection device 30B. The control device 30A also causes the magnetic element unit 42 to perform magnetic processing on the data band DB of the magnetic tape MT. That is, the control device 30A obtains a read signal from the magnetic element unit 42 (i.e., data read from the data band DB of the magnetic tape MT by the magnetic element unit 42) and supplies a recording signal to the magnetic element unit 42 to record data corresponding to the recording signal on the data band DB of the magnetic tape MT.
[0128] Furthermore, to reduce the effects of TDS, the control device 30A calculates the servo band pitch from the position detection results (i.e., servo pattern signals S1A and S2A) of the position detection device 30B, and performs tension control and skews the magnetic head 28 on the magnetic tape MT according to the calculated servo band pitch. Tension control is achieved by adjusting the rotation speed and rotation torque of each of the feed motor 36 and the take-up motor 40. Skew of the magnetic head 28 is achieved by operating a tilt mechanism 49.
[0129] Next, an example of the ideal waveform signal acquisition process will be described with reference to Figures 12 and 13. The ideal waveform signal acquisition process is performed by the control device 30A (see Figure 13).
[0130] As an example, as shown in Figure 12, the magnetic tape MT has a BOT section 31A, an EOT section 31B, and a data recording section 31C. For example, the magnetic tape MT is divided into three sections along the longitudinal direction LD: the BOT section 31A, the EOT section 31B, and the data recording section 31C. The BOT section 31A refers to an area provided at the beginning of the magnetic tape MT. The EOT section 31B refers to an area provided at the end of the magnetic tape MT. The BOT section 31A, the EOT section 31B, and the data recording section 31C are formed on the surface 31 of the magnetic tape MT, and have a plurality of servo bands SB (servo bands SB1, SB2, and SB3 in the example shown in Figure 12) and a plurality of data bands DB (data bands DB1 and DB2 in the example shown in Figure 12).
[0131] The data recording section 31C is provided between the BOT section 31A and the EOT section 31B in the longitudinal direction LD of the magnetic tape MT. Data is recorded in the data recording section 31C by, for example, the magnetic tape drive 14. The data recorded in the data recording section 31C is read by the magnetic tape drive 14 or a magnetic tape drive (not shown) different from the magnetic tape drive 14.
[0132] When the magnetic tape MT is in an unused state (for example, when no data has been recorded on the data band DB by the magnetic tape drive 14), a reference servo pattern 520 is recorded on the data band DB. In the example shown in FIG. 12, a plurality of reference servo patterns 520 are recorded along the longitudinal direction LD on the data band DB in the BOT section 31A, the EOT section 31B, and the data recording section 31C. That is, a plurality of reference servo patterns 520 are recorded on the data band DB from one end to the other end of the data band DB along the longitudinal direction LD. The reference servo pattern 520 is an example of a "reference servo pattern" according to the technology of the present disclosure.
[0133] In the longitudinal direction LD, the positions of the multiple reference servo patterns 520 correspond to the positions of the multiple frames 50. That is, the reference servo patterns 520 are recorded on the data band DB in correspondence with the frames 50. The reference servo patterns 520 and the frames 50 correspond to each other in a one-to-one relationship, and are recorded on the data band DB along the longitudinal direction LD at the same intervals as the intervals between adjacent frames 50 in the longitudinal direction LD. For example, in the data band DB, the reference servo pattern 520 is recorded at the same position in the longitudinal direction LD as the servo pattern 52A included in the frame 50.
[0134] The reference servo pattern 520 is made up of a pair of linear magnetization regions 540A. In the example shown in Fig. 12, a pair of linear magnetization regions 540A1 and 540A2 is shown as an example of the pair of linear magnetization regions 540A. Each of the linear magnetization regions 540A1 and 540A2 is a linearly magnetized region.
[0135] The linear magnetization regions 540A1 and 540A2 are inclined in opposite directions with respect to the imaginary line C1. In the example shown in FIG. 12, the linear magnetization regions 540A1 and 540A2 are inclined axisymmetrically with respect to the imaginary line C1. More specifically, the linear magnetization regions 540A1 and 540A2 are formed non-parallel to each other and inclined at a predetermined angle (e.g., 5 degrees) in opposite directions toward the longitudinal direction LD of the magnetic tape MT with the imaginary line C1 as the axis of symmetry. The linear magnetization region 540A1 is a collection of five magnetized straight lines, called magnetization straight lines 540A1a. The linear magnetization region 540A2 is a collection of five magnetized straight lines, called magnetization straight lines 540A2a.
[0136] As described above, the linear magnetization region pair 54A and the linear magnetization region pair 540A differ in that the linear magnetization region pair 54A is recorded in the servo band SB, while the linear magnetization region pair 540A is recorded in the data band DB, but the geometric characteristics of the linear magnetization region pair 540A are the same as the geometric characteristics of the linear magnetization region pair 54 shown in Fig. 8. In this embodiment, "same" refers to not only complete sameness, but also sameness in the sense of including an error that is generally acceptable in the technical field to which the technology of the present disclosure belongs and that does not contradict the spirit of the technology of the present disclosure.
[0137] In the ideal waveform signal acquisition process, before the magnetic head 28 records data on the data band DB, the servo read element SR reads the reference servo pattern 520 and outputs a reference signal RS1 that indicates the read result.
[0138] As described above, the servo read element SR is formed linearly along the virtual straight line C3. Therefore, when the reference servo pattern 520 is read by the servo read element SR in a default state, the angle formed by the linear magnetized region 540A1 and the servo read element SR is different from the angle formed by the linear magnetized region 540A2 and the servo read element SR in the linear magnetized region pair 540A. Here, the default state refers to, for example, a state in which the servo read element SR is aligned with the multiple reference servo patterns 520 and the magnetic tape MT is run in the forward direction at a constant speed (for example, the same as the constant speed designated as the running speed of the magnetic tape MT when the magnetic head 28 performs magnetic processing on the data band DB of the data recording section 31C).
[0139] If the angle between the linear magnetization region 540A1 and the servo read element SR differs from the angle between the linear magnetization region 540A2 and the servo read element SR, variations (e.g., signal level variations and waveform distortions) due to azimuth loss occur between the first linear magnetization region signal RS1a derived from the linear magnetization region 540A1 and the second linear magnetization region signal RS1b derived from the linear magnetization region 540A2. Here, the first linear magnetization region signal RS1a refers to a signal obtained by reading the linear magnetization region 540A1 with the servo read element SR. The second linear magnetization region signal RS1b refers to a signal obtained by reading the linear magnetization region 540A2 with the servo read element SR.
[0140] 12, the angle formed by the servo read element SR and the linear magnetized region 540A1 is larger than the angle formed by the servo read element SR and the linear magnetized region 540A2, resulting in a smaller signal output and a wider waveform, which causes variations in the signal obtained when the servo read element SR reads across the servo band SB while the magnetic tape MT is running. In other words, the same phenomenon occurs as when the servo read element SR reads the servo pattern 52A. Therefore, when the servo read element SR reads the reference servo pattern 520, the servo read element SR outputs a reference signal RS1 having the same waveform as the waveform of the servo pattern signal shown in FIG. 8.
[0141] As an example, as shown in Fig. 13, a reference signal RS1 is input to the control device 30A. In the example shown in Fig. 13, the reference signal RS1 input to the control device 30A is a signal obtained by reading the reference servo pattern 520 by the servo read element SR (see also Fig. 12). Furthermore, the control device 30A sequentially receives the reference signals RS1 obtained by reading each of all the reference servo patterns 520 by the servo read element SR from the beginning to the end of the magnetic tape MT (i.e., from the beginning of the BOT section 31A to the end of the EOT section 31B).
[0142] The control device 30A has a threshold value TH that is determined according to the angle formed between the reference servo pattern 520 and the servo read element SR (i.e., the skew angle of the magnetic head 28). For example, the threshold value TH is derived from an arithmetic expression (not shown) that uses the skew angle of the magnetic head 28 as an independent variable and the threshold value TH as a dependent variable, or from a table (not shown) that associates the skew angle of the magnetic head 28 with the threshold value TH.
[0143] The control device 30A extracts the small waveform signal SWS and the large waveform signal LWS from the reference signal RS1 using a threshold value TH. The threshold value TH is classified into a first threshold value TH1 and a second threshold value TH2. The first threshold value TH1 is determined according to a first angle, and the second threshold value TH2 is determined according to a second angle. The first angle refers to the angle formed between the linear magnetization region 540A1 (see FIG. 12) and the servo read element SR (see FIG. 12) (for example, the angle formed between the magnetization line 540A1a (see FIG. 12) and the servo read element SR (see FIG. 12)). The second angle refers to the angle formed between the linear magnetization region 540A2 (see FIG. 12) and the servo read element SR (see FIG. 12) (for example, the angle formed between the magnetization line 540A2a (see FIG. 12) and the servo read element SR (see FIG. 12)).
[0144] 13, the first threshold value TH1 is smaller than the second threshold value TH2. The control device 30A detects a point P in the reference signal RS1 where the signal level rises to "0," and extracts, as the small waveform signal SWS, a signal of one wavelength having a single peak value equal to or greater than the first threshold value TH1 and less than the second threshold value TH2 between adjacent points P. The control device 30A also extracts, as the large waveform signal LWS, a signal of one wavelength having a single peak value equal to or greater than the second threshold value TH2 between adjacent points P.
[0145] Each of the small waveform signal SWS and the large waveform signal LWS is a signal of one wavelength. The amplitude of the small waveform signal SWS is smaller than the amplitude of the large waveform signal LWS. In the example shown in Fig. 13, the control device 30A extracts five small waveform signals SWS from the first linear magnetization region signal RS1a and five large waveform signals LWS from the second linear magnetization region signal RS1b.
[0146] The control device 30A generates the second ideal waveform signal 66B by averaging multiple waveform subsignals SWS (five waveform subsignals SWS in the example shown in FIG. 13). The second ideal waveform signal 66B is generated by the control device 30A for each reference servo pattern 520. Each reference servo pattern 520 has a corresponding frame 50. Therefore, the control device 30A stores the corresponding second ideal waveform signal 66B for each frame 50 in the storage 32. For example, the second ideal waveform signals 66B corresponding to all of the frames 50 from the beginning of the BOT section 31A to the end of the EOT section 31B are stored in the storage 32 in a state where they correspond to each of the frames 50 from the beginning of the BOT section 31A to the end of the EOT section 31B.
[0147] In this embodiment, averaging the plurality of waveform short signals SWS means generating a signal representing an average waveform of the plurality of waveform short signals SWS. Although an example is given here in which a signal representing the average waveform of the plurality of waveform short signals SWS is stored in storage 32 as second ideal waveform signal 66B, this is merely one example. For example, a signal representing a waveform that is median among the plurality of waveform short signals SWS may be used as second ideal waveform signal 66B, or a signal representing a waveform that appears most frequently among the plurality of waveform short signals SWS may be used as second ideal waveform signal 66B. Alternatively, a signal representing a waveform derived in accordance with the statistics of the plurality of waveform short signals SWS (i.e., a statistical waveform derived from the plurality of waveform short signals SWS) may be used as second ideal waveform signal 66B.
[0148] Furthermore, in this embodiment, the number of the plurality of waveform small signals SWS used to generate the second ideal waveform signal 66B is five, but this is merely an example. For example, the number of the plurality of waveform small signals SWS used to generate the second ideal waveform signal 66B may be six or more. In this case, for example, the second ideal waveform signal 66B may be generated from a plurality of waveform small signals SWS extracted from a plurality of first linear magnetization region signals RS1a corresponding to a plurality of linear magnetization regions 540A1 (see FIG. 12). Furthermore, the number of the plurality of waveform small signals SWS used to generate the second ideal waveform signal 66B may be less than five.
[0149] The control device 30A generates a first ideal waveform signal 66A by averaging a plurality of large waveform signals LWS (five large waveform signals LWS in the example shown in FIG. 13). The first ideal waveform signal 66A is generated by the control device 30A for each reference servo pattern 520. In the storage 32, the control device 30A stores the corresponding first ideal waveform signal 66A for each frame 50, similar to the second ideal waveform signal 66B. For example, the first ideal waveform signals 66A corresponding to all of the frames 50 from the beginning of the BOT section 31A to the end of the EOT section 31B are stored in the storage 32 in a state where they correspond to each of the frames 50 from the beginning of the BOT section 31A to the end of the EOT section 31B.
[0150] In this embodiment, averaging the plurality of large waveform signals LWS means generating a signal representing an average waveform of the plurality of large waveform signals LWS. Although an example is given here in which a signal representing the average waveform of the plurality of large waveform signals LWS is stored in storage 32 as first ideal waveform signal 66A, this is merely one example. For example, a signal representing a waveform that is median among the plurality of large waveform signals LWS may be designated as first ideal waveform signal 66A, or a signal representing a waveform that appears most frequently among the plurality of large waveform signals LWS may be designated as first ideal waveform signal 66A. Alternatively, a signal representing a waveform derived according to the statistics of the plurality of large waveform signals LWS (i.e., a statistical waveform derived from the plurality of large waveform signals LWS) may be designated as first ideal waveform signal 66A.
[0151] Furthermore, in this embodiment, the number of the plurality of large waveform signals LWS used to generate the first ideal waveform signal 66A is five, but this is merely an example. For example, the number of the plurality of large waveform signals LWS used to generate the first ideal waveform signal 66A may be six or more. In this case, for example, the first ideal waveform signal 66A may be generated from a plurality of large waveform signals LWS extracted from a plurality of second linear magnetization region signals RS1b corresponding to a plurality of linear magnetization regions 540A2 (see FIG. 12). Furthermore, the number of the plurality of large waveform signals LWS used to generate the first ideal waveform signal 66A may be less than five.
[0152] In this way, the control device 30A executes the ideal waveform signal acquisition process, and a signal indicating the result of the reference servo pattern 520 recorded on the magnetic tape MT from the beginning of the BOT section 31A to the end of the EOT section 31B being read by the servo read element SR is stored in the storage 32 as an ideal waveform signal 66 for each frame 50.
[0153] 12 and 13 show an example in which a plurality of signals indicating the results of reading all of the reference servo patterns 520 recorded on the magnetic tape MT from the beginning of the BOT section 31A to the end of the EOT section 31B by the servo read element SR are stored in the storage 32 as a plurality of ideal waveform signals 66, but this is merely an example. For example, at least one signal indicating the results of reading at least one reference servo pattern 520 recorded in a portion of the magnetic tape MT (for example, one or two of the BOT section 31A, the EOT section 31B, and the data recording section 31C) by the servo read element SR may be stored in the storage 32 as at least one ideal waveform signal 66.
[0154] Next, an example of the reference servo pattern erasing process will be described with reference to Fig. 14. The reference servo pattern erasing process is performed by the control device 30A (see Fig. 13) after the control device 30A has performed the ideal waveform signal acquisition process.
[0155] As an example, as shown in FIG. 14, the control device 30A operates the movement mechanism 48 (see FIG. 6) to align the positions of the servo read elements SR1 and SR2 with the adjacent servo bands SB, and in this state, controls the feed motor 36 and the take-up motor 40 to run the magnetic tape MT. Then, the control device 30A supplies recording signals to the multiple data read / write elements DRW of the magnetic head 28. The multiple data read / write elements DRW record data corresponding to the recording signals on the data bands DB of the magnetic tape MT. That is, the multiple data read / write elements DRW overwrite data in the areas of the data bands DB where the reference servo patterns 520 are recorded, in accordance with the recording signals supplied from the control device 30A. This erases the reference servo patterns 520 from the data bands DB.
[0156] In the example shown in Figure 14, an example is shown in which data is overwritten by the magnetic head 28 on the reference servo pattern 520 while the magnetic tape MT is running in the reverse direction, but this is merely one example, and data may also be overwritten by the magnetic head 28 on the reference servo pattern 520 while the magnetic tape MT is running in the forward direction.
[0157] Next, among the multiple steps included in the manufacturing process of the magnetic tape MT, an example of a servo pattern recording step of recording the servo patterns 52 on the servo bands SB of the magnetic tape MT and a winding step of winding the magnetic tape MT will be described.
[0158] 15, a servo writer SW is used in the servo pattern recording process. The servo writer SW includes a supply reel SW1, a take-up reel SW2, a drive device SW3, a pulse signal generator SW4, a servo writer controller SW5, multiple guides SW6, a transport path SW7, a servo pattern recording head WH, and a verify head VH. In this embodiment, the servo writer SW is an example of a "detection device" and an "inspection device" according to the technology of the present disclosure.
[0159] The servo writer controller SW5 incorporates a device equivalent to the above-described controller 25 (see FIG. 3). The servo writer controller SW5 controls the entire servo writer SW. In this embodiment, the servo writer controller SW5 is implemented by an ASIC, but the technology of the present disclosure is not limited to this. For example, the servo writer controller SW5 may be implemented by an FPGA and / or a PLC. The servo writer controller SW5 may also be implemented by a computer including a CPU, flash memory (e.g., EEPROM and / or SSD), and RAM. The servo writer controller SW5 may also be implemented by a combination of two or more of the ASIC, FPGA, PLC, and computer. In other words, the servo writer controller SW5 may be implemented by a combination of hardware and software. In this embodiment, the servo writer controller SW5 is an example of a “processing device,” “inspection processor,” and “storage medium” according to the technology of the present disclosure.
[0160] A pancake is set on the supply reel SW1. The pancake refers to a large diameter roll of magnetic tape MT, which is cut to the product width from a wide web before the servo pattern 52 and the reference servo pattern 520 are written, wound around a hub.
[0161] The drive unit SW3 has a motor (not shown) and gears (not shown) and is mechanically connected to the supply reel SW1 and the take-up reel SW2. When the magnetic tape MT is wound by the take-up reel SW2, the drive unit SW3 generates power in accordance with instructions from the servo writer controller SW5 and transmits the generated power to the supply reel SW1 and the take-up reel SW2 to rotate them. That is, the supply reel SW1 receives power from the drive unit SW3 and rotates to feed the magnetic tape MT to a predetermined transport path SW7. The take-up reel SW2 receives power from the drive unit SW3 and rotates to wind the magnetic tape MT fed from the supply reel SW1. The rotation speed and rotation torque of the supply reel SW1 and the take-up reel SW2 are adjusted according to the speed at which the magnetic tape MT is wound around the take-up reel SW2.
[0162] A plurality of guides SW6 and a servo pattern recording head WH are arranged on the transport path SW7. The servo pattern recording head WH is arranged between the plurality of guides SW6 on the side of the surface 31 of the magnetic tape MT. The magnetic tape MT sent out from the supply reel SW1 to the transport path SW7 is guided by the plurality of guides SW6, passes over the servo pattern recording head WH, and is taken up by the take-up reel SW2.
[0163] In the servo pattern recording process, the pulse signal generator SW4 generates a pulse signal under the control of the servo writer controller SW5 and supplies the generated pulse signal to the servo pattern recording head WH. While the magnetic tape MT is traveling at a constant speed on the transport path SW, the servo pattern recording head WH records the servo pattern 52 in the servo band SB and records the reference servo pattern 520 in the data band DB in accordance with the pulse signal supplied from the pulse signal generator SW4.
[0164] As a result, for example, a plurality of servo patterns 52 are recorded in the servo band SB of the magnetic tape MT over the entire length of the magnetic tape MT, and a plurality of reference servo patterns 520 are recorded in a designated area within the data band DB of the magnetic tape MT (for example, the area in the center between one servo band SB and the other servo band SB adjacent in the width direction WD, and from the beginning to the end of the longitudinal direction LD of the magnetic tape MT) (see Figure 12).
[0165] After the plurality of servo patterns 52 and the plurality of reference servo patterns 520 are recorded on the magnetic tape MT, the servo writer SW performs an ideal waveform signal acquisition process by the servo writer controller SW5, whereby a plurality of ideal waveform signals 66 are stored for each frame 50 in a storage (not shown) within the servo writer controller SW5.
[0166] The manufacturing process for magnetic tape MT includes several steps in addition to the servo pattern recording step, including an inspection step and a winding step.
[0167] For example, the inspection process is a process of inspecting the servo bands SB formed on the surface 31 of the magnetic tape MT by the servo pattern recording head WH. Inspecting the servo bands SB refers to, for example, a process of determining whether the servo patterns 52 recorded on the servo bands SB are correct. Determining whether the servo patterns 52 are correct refers to, for example, determining whether the magnetization lines 54A1a, 54A2a, 54B1a, and 54B2a of the servo patterns 52A and 52B are recorded exactly and within the allowable error with respect to predetermined locations on the surface 31 (i.e., verifying the servo patterns 52).
[0168] The inspection process is performed using a servo writer controller SW5 and a verify head VH. The verify head VH is located downstream of the servo pattern recording head WH in the transport direction of the magnetic tape MT. The verify head VH is also provided with a plurality of servo read elements (not shown), similar to the magnetic head 28, and the plurality of servo read elements read a plurality of servo bands SB. When the servo writer controller SW5 performs the ideal waveform signal acquisition process, the servo read element included in the verify head VH also reads the reference servo pattern 520 in the same manner as the servo read element SR of the magnetic head 28 in the magnetic tape drive 14 reads the reference servo pattern 520.
[0169] The verify head VH is connected to a servo writer controller SW5. The verify head VH is disposed at a position directly facing the servo band SB when viewed from the surface 31 side of the magnetic tape MT (i.e., the back side of the verify head VH). The verify head VH reads the servo patterns 52 recorded on the servo band SB and outputs the read results (hereinafter referred to as "servo pattern read results") to the servo writer controller SW5. The servo writer controller SW5 inspects the servo band SB (e.g., determines whether the servo patterns 52 are correct) based on the servo pattern read results (e.g., servo pattern signals) input from the verify head VH. For example, the servo writer controller SW5 incorporates a device equivalent to the above-mentioned controller 25 (see FIG. 3), so the servo writer controller SW5 inspects the servo band SB by obtaining position detection results from the servo pattern read results and determining whether the servo patterns 52 are correct using the position detection results.
[0170] Here, the servo writer controller SW5 acquires a position detection result from the servo pattern read result by, for example, performing a servo pattern detection process. The ideal waveform signal 66 used in the servo pattern detection process by the servo writer controller SW5 is the ideal waveform signal 66 stored for each frame 50 in a storage (not shown) within the servo writer controller SW5.
[0171] The servo writer controller SW5 outputs information indicating the results of inspecting the servo band SB (for example, the results of determining whether the servo pattern 52 is correct or not) to a predetermined output destination (for example, storage 32 (see Figure 3), UI-related device 34 (see Figure 3), and / or external device 37 (see Figure 3), etc.).
[0172] For example, after the inspection process is completed, the winding process is carried out next. The winding process is a process of winding the magnetic tape MT onto the supply reel 22 (see FIGS. 2 to 4) housed in the magnetic tape cartridge 12 (see FIGS. 1 to 4)) used for each of the multiple magnetic tape cartridges 12 (see FIGS. 1 to 4). In the winding process, a winding motor M is used. The winding motor M is mechanically connected to the supply reel 22 via a gear or the like. Under the control of a processing device (not shown), the winding motor M applies a rotational force to the supply reel 22 to rotate the supply reel 22. The magnetic tape MT wound onto the take-up reel SW2 is wound onto the supply reel 22 by the rotation of the supply reel 22. In the winding process, a cutting device (not shown) is used. When the required amount of magnetic tape MT is wound onto each of the plurality of supply reels 22, the magnetic tape MT fed from the take-up reel SW2 to the supply reel 22 is cut by a cutting device.
[0173] Next, the operation of the magnetic tape system 10 will be described.
[0174] The magnetic tape cartridge 12 contains a magnetic tape MT shown in Fig. 6. The magnetic tape cartridge 12 is loaded into a magnetic tape drive 14. In the magnetic tape drive 14, when magnetic processing is performed on the magnetic tape MT by the magnetic element unit 42, the magnetic tape MT is pulled out of the magnetic tape cartridge 12, and the servo patterns 52 in the servo bands SB are read by the servo read element SR of the magnetic head 28 (see Figs. 8 and 9).
[0175] 8, when the servo pattern 52A is read by the servo read element SR, the angle formed by the linear magnetization region 54A1 and the servo read element SR is different from the angle formed by the linear magnetization region 54A2 and the servo read element SR in the linear magnetization region pair 54A. This difference in angle causes a variation due to azimuth loss between the servo pattern signal derived from the linear magnetization region 54A1, i.e., the first linear magnetization region signal S1a (see FIG. 10), and the servo pattern signal derived from the linear magnetization region 54A2, i.e., the second linear magnetization region signal S1b (see FIG. 10). The variation between the first linear magnetization region signal S1a and the second linear magnetization region signal S1b can be a factor in reducing the accuracy of servo control, etc.
[0176] Therefore, in the magnetic tape system 10 according to this embodiment, as an example, a servo pattern detection process is performed by the processing device 30 (see FIG. 9), as shown in FIG. 16. For example, the servo pattern detection process shown in FIG. 16 is performed every time the servo read element SR starts reading the servo pattern 52 (i.e., every time the servo read element SR starts reading the servo pattern 52 in units of frame 50). The flow of the servo pattern detection process shown in FIG. 16 is an example of part of the "detection method" according to the technique of the present disclosure.
[0177] 16, first, in step ST10, the position detection device 30B acquires a servo band signal. For example, the first position detection device 30B1 acquires a first servo band signal S1, and the second position detection device 30B2 acquires a second servo band signal S2. After the process of step ST10 is executed, the servo pattern detection process proceeds to step ST12.
[0178] In step ST12, the position detection device 30B acquires the first ideal waveform signal 66A and the second ideal waveform signal 66B from the storage 32. Here, the position detection device 30B acquires from the storage 32 the first ideal waveform signal 66A and the second ideal waveform signal 66B corresponding to the frame 50 including the servo pattern 52 read by the servo read element SR. After the processing of step ST12 is executed, the servo pattern detection processing proceeds to step ST14. Note that the technology of the present disclosure is valid even if the processing of step ST10 and the processing of step ST12 are interchanged in the servo pattern detection processing shown in FIG. 16.
[0179] In step ST14, the position detection device 30B compares the servo band signal acquired in step ST10 with the ideal waveform signal 66 acquired in step ST12. That is, in the first position detection device 30B1, the first detection circuit 39A compares the first servo band signal S1 with the first ideal waveform signal 66A, and the second detection circuit 39B compares the first servo band signal S1 with the second ideal waveform signal 66B. Meanwhile, in the second position detection device 30B2, the first detection circuit 39A compares the second servo band signal S2 with the first ideal waveform signal 66A, and the second detection circuit 39B compares the second servo band signal S2 with the second ideal waveform signal 66B. After the processing of step ST14 is executed, the servo pattern detection processing proceeds to step ST16.
[0180] In step ST16, the first detection circuit 39A of the first position detection device 30B1 acquires the second linear magnetization region signal S1b based on the comparison result of step ST14, and the second detection circuit 39B of the first position detection device 30B1 acquires the first linear magnetization region signal S1a based on the comparison result of step ST14. Also, the first detection circuit 39A of the second position detection device 30B2 acquires the second linear magnetization region signal S1b based on the comparison result of step ST14, and the second detection circuit 39B of the second position detection device 30B2 acquires the first linear magnetization region signal S1a based on the comparison result of step ST14. After the processing of step ST16 is executed, the servo pattern detection processing proceeds to step ST18.
[0181] In step ST18, the first position detection device 30B1 generates a servo pattern signal S1A, which is the logical sum of the first linear magnetization region signal S1a and the second linear magnetization region signal S1b acquired in step ST16, and outputs the signal to the control device 30A. In addition, the second position detection device 30B2 generates a servo pattern signal S2A, which is the logical sum of the first linear magnetization region signal S1a and the second linear magnetization region signal S1b acquired in step ST16, and outputs the signal to the control device 30A. After the processing of step ST18 is executed, the servo pattern detection processing ends.
[0182] In the magnetic tape system 10 according to this embodiment, as shown in FIG. 17 as an example, the processing device 30 (see FIG. 9) performs an ideal waveform signal acquisition process. The ideal waveform signal acquisition process is performed by the processing device 30 when a predetermined condition is satisfied. Here, an example of the predetermined condition is a condition in which the magnetic tape MT starts running in the forward direction with the servo read element SR positioned at the beginning of the magnetic tape MT in the longitudinal direction LD and at the center in the width direction LD. The flow of the ideal waveform signal acquisition process shown in FIG. 17 is an example of a part of the "detection method" according to the technology of the present disclosure.
[0183] 17, first, in step ST20, the control device 30A determines whether or not a reference signal RS1 has been input from the servo read element SR. If the reference signal RS1 has not been input from the servo read element SR in step ST20, the determination is negative, and the ideal waveform signal acquisition process proceeds to step ST34. If the reference signal RS1 has been input from the servo read element SR in step ST20, the determination is positive, and the ideal waveform signal acquisition process proceeds to step ST22.
[0184] In step ST22, the control device 30A acquires the waveform small signal SWS from the reference signal RS1 input from the servo read element SR. For example, the control device 30A acquires the waveform small signal SWS by extracting from the reference signal RS1 a signal of one wavelength having one peak value that is equal to or greater than the first threshold value TH1 and less than the second threshold value TH2 between adjacent points P. After the processing of step ST22 is executed, the ideal waveform signal acquisition processing proceeds to step ST24.
[0185] In step ST24, the control device 30A determines whether the number of small waveform signals SWS acquired in step ST22 has reached a predetermined number (e.g., 5). If the number of small waveform signals SWS has not reached the predetermined number in step ST24, the determination is negative, and the ideal waveform signal acquisition process proceeds to step ST22. If the number of small waveform signals SWS has reached the predetermined number in step ST24, the determination is positive, and the ideal waveform signal acquisition process proceeds to step ST26.
[0186] In step ST26, control device 30A acquires large waveform signal LWS from reference signal RS1 used in the processing of step ST22. For example, control device 30A acquires large waveform signal LWS by extracting from reference signal RS1 a signal of one wavelength that has one peak value equal to or greater than second threshold value TH2 between adjacent points P. After the processing of step ST26 is executed, the ideal waveform signal acquisition processing proceeds to step ST28.
[0187] In step ST28, control device 30A determines whether the number of large waveform signals LWS acquired in step ST26 has reached a predetermined number (e.g., 5). If the number of large waveform signals LWS has not reached the predetermined number in step ST28, the determination is negative, and the ideal waveform signal acquisition process proceeds to step ST26. If the number of large waveform signals LWS has reached the predetermined number in step ST28, the determination is positive, and the ideal waveform signal acquisition process proceeds to step ST30.
[0188] In step ST30, control device 30A generates a signal indicating the average waveform of the plurality of large waveform signals LWS obtained by repeatedly performing the processes of steps ST26 and ST28 as first ideal waveform signal 66A, and stores first ideal waveform signal 66A in storage 32 in association with frame 50. After the process of step ST30 is executed, the ideal waveform signal acquisition process proceeds to step ST32.
[0189] In step ST32, control device 30A generates a signal indicating an average waveform of the plurality of small waveform signals SWS obtained by repeatedly performing the processes of steps ST22 and ST24 as second ideal waveform signal 66B, and stores second ideal waveform signal 66B in storage 32 in association with frame 50. After the process of step ST32 is executed, the ideal waveform signal acquisition process proceeds to step ST34.
[0190] In step ST34, the control device 30A determines whether the conditions for terminating the ideal waveform signal acquisition process (hereinafter referred to as "termination conditions") have been satisfied. Examples of the termination conditions include any of the following first to third conditions. The first condition is that the servo read element SR has reached the end of the magnetic tape MT in the longitudinal direction LD. The second condition is that the servo read element SR has read all of the reference servo patterns 520. The third condition is that an instruction to terminate the ideal waveform signal acquisition process has been received by the UI-related device 34.
[0191] If the termination condition is not satisfied in step ST34, the determination is negative, and the ideal waveform signal acquisition process proceeds to step ST20. If the termination condition is satisfied in step ST34, the determination is positive, and the ideal waveform signal acquisition process ends.
[0192] Each ideal waveform signal 66 stored in the storage 32 in association with each frame 50 by performing the ideal waveform signal acquisition process shown in FIG. 17 is used for comparison with the servo band signal in the servo pattern detection process.
[0193] In the magnetic tape system 10 according to this embodiment, the processing device 30 (see FIG. 9) performs the reference servo pattern erasure process, as shown in FIG. 18 as an example. For ease of explanation, the description will be given on the assumption that the reference servo pattern erasure process is performed with a plurality of data read / write elements DRW positioned on the data band DB (for example, on one end of the data band DB).
[0194] 18, first, in step ST36, the control device 30A controls the supply motor 36 and the take-up motor 40 to start running the magnetic tape MT. The running direction of the magnetic tape MT is, for example, the forward direction. After the processing of step ST36 is executed, the reference servo pattern erasing processing proceeds to step ST38.
[0195] In step ST38, the control device 30A determines whether or not the timing for recording data on the data band DB (hereinafter referred to as "data recording timing") has arrived. If the data recording timing has not arrived in step ST38, the determination is negative, and the reference servo pattern erasing process proceeds to step ST48. If the data recording timing has arrived in step ST38, the determination is positive, and the reference servo pattern erasing process proceeds to step ST40.
[0196] In step ST40, the control device 30A determines whether the magnetic element unit 42 has reached the location where the reference servo pattern 520 is recorded (hereinafter referred to as the "reference servo pattern location"). In step ST40, if the magnetic element unit 42 has not reached the reference servo pattern location, the determination is negative, and the reference servo pattern erasure process proceeds to step ST44. In step ST40, if the magnetic element unit 42 has reached the reference servo pattern location, the determination is positive, and the reference servo pattern erasure process proceeds to step ST42.
[0197] In step ST42, the control device 30A supplies recording signals to the plurality of data read / write elements DRW. The plurality of data read / write elements DRW erase the reference servo pattern 520 by overwriting the reference servo pattern locations with data corresponding to the supplied recording signals. After the processing of step ST42 is executed, the reference servo pattern erasure processing proceeds to step ST48.
[0198] In step ST44, the control device 30A supplies recording signals to the plurality of data read / write elements DRW. The magnetic element unit 42 records data corresponding to the supplied recording signals in the data band DB. After the process of step ST44 is executed, the reference servo pattern erasure process proceeds to step ST48.
[0199] In step ST48, the control device 30A determines whether or not all the reference servo patterns 520 in the predetermined area (for example, the entire area in the longitudinal direction LD of the magnetic tape MT, the BOT section 31A, the EOT section 31B, or the data recording section 31C) have been erased. If in step ST48 all the reference servo patterns 520 in the predetermined area have not been erased, the determination is negative, and the reference servo pattern erasing process proceeds to step ST38. If in step ST48 all the reference servo patterns 520 in the predetermined area have been erased, the determination is positive, and the reference servo pattern erasing process proceeds to step ST50. Note that in this step ST48, an example of the "predetermined area" is an area predetermined by default, or an area specified by a user or the like via the UI-based device 34 or the like.
[0200] In step ST50, the control device 30A stops the running of the magnetic tape MT by controlling the delivery motor 36 and the take-up motor 40. After the process of step ST50 is executed, the reference servo pattern erasing process ends.
[0201] As described above, in the magnetic tape system 10 according to this embodiment, the reference servo pattern 520 recorded in the data band DB is read by the servo read element SR, and the result is stored in the storage 32 as the ideal waveform signal 66. The servo band signal is then compared with the ideal waveform signal to detect the servo pattern signal. Therefore, according to this configuration, the servo pattern signal can be detected with higher accuracy than when the ideal waveform signal 66 to be compared with the servo band signal is a fixed signal determined in advance based solely on experience or intuition.
[0202] Furthermore, according to this configuration, a plurality of reference servo patterns 520 are recorded over the entire length of the magnetic tape MT, and an ideal waveform signal 66 corresponding to each reference servo pattern 520 is stored in the storage 32 for each frame 50. Therefore, when magnetic processing is performed on the magnetic tape MT by the magnetic head 28, it is possible to instantly obtain the ideal waveform signal 66 corresponding to the position of the frame 50. Furthermore, even if the width of the magnetic tape MT changes and / or the servo read element SR deteriorates (for example, due to deterioration over time and / or wear, etc.), it is possible to instantly obtain the ideal waveform signal 66 corresponding to the width of the magnetic tape MT and / or the deterioration of the servo read element SR.
[0203] Furthermore, in the magnetic tape system 10 according to this embodiment, data is overwritten onto the reference servo pattern locations, thereby erasing the reference servo patterns 520. Therefore, according to this configuration, erasing the reference servo patterns 520 and recording data can be performed in parallel on the data band DB of the magnetic tape MT. In other words, erasing the reference servo patterns 520 and recording data can be performed more efficiently than when the process of erasing the reference servo patterns 520 and the process of recording data are performed separately.
[0204] Furthermore, in the magnetic tape system 10 according to this embodiment, a plurality of reference servo patterns 520 are recorded in the data band DB along the longitudinal direction LD, and a plurality of ideal waveform signals 66 corresponding to the plurality of reference servo patterns 520 are stored in the storage 32. The plurality of ideal waveform signals 66 are then sequentially used for comparison with the servo band signal in the servo pattern detection process. Therefore, according to this configuration, the servo band signal can be compared with the ideal waveform signal 66 corresponding to deformation in the width of the magnetic tape MT and / or deterioration of the servo read element SR. As a result, the servo pattern signal can be detected more accurately than when only one reference servo pattern 520 is recorded in the data band DB.
[0205] Furthermore, in the magnetic tape system 10 according to this embodiment, a plurality of reference servo patterns 520 are recorded on the data band DB along the longitudinal direction LD from one end to the other end of the data band DB, and a plurality of ideal waveform signals 66 corresponding to the plurality of reference servo patterns 520 are stored in the storage 32. The plurality of ideal waveform signals 66 are then sequentially used for comparison with the servo band signal in the servo pattern detection process. Therefore, with this configuration, the servo band signal can be compared with the ideal waveform signal 66 corresponding to deformation in the width of the magnetic tape MT and / or deterioration of the servo read element SR from one end to the other end of the data band DB. As a result, the servo pattern signal can be detected more accurately than when only one reference servo pattern 520 is recorded on the data band DB.
[0206] Furthermore, in the magnetic tape system 10 according to this embodiment, the ideal waveform signal 66 is stored in the storage 32 in a state where it corresponds to the position of the reference servo pattern 520 in the data band DB (in this embodiment, as an example, the position of the frame 50). Therefore, according to this configuration, it is possible to compare the ideal waveform signal 66, which corresponds to the deformation in the width of the magnetic tape MT and / or the deterioration of the servo read element SR at the position of the reference servo pattern 520 in the data band DB, with the servo band signal.
[0207] Furthermore, in the magnetic tape system 10 according to this embodiment, a reference servo pattern 520 is recorded in the data band DB in correspondence with the frame 50. That is, the reference servo pattern 520 is arranged at the same position in the longitudinal direction LD as the frame 50. Therefore, according to this configuration, it is possible to compare the servo band signal with an ideal waveform signal 66 that corresponds to deformation in the width of the magnetic tape MT and / or deterioration of the servo read element SR at the position of the frame 50.
[0208] Furthermore, in the magnetic tape system 10 according to this embodiment, a reference servo pattern 520 is recorded in the data recording section 31C, and an ideal waveform signal 66 corresponding to the reference servo pattern 520 is stored in the storage 32. Therefore, according to this configuration, it is possible to compare the ideal waveform signal 66 corresponding to the deformation of the width of the magnetic tape MT and / or the deterioration of the servo read element SR in the data recording section 31C with the servo band signal.
[0209] Furthermore, in the magnetic tape system 10 according to this embodiment, a reference servo pattern 520 is recorded in each of the BOT section 31A and the EOT section 31B, and each ideal waveform signal 66 corresponding to each reference servo pattern 520 is stored in the storage 32. Therefore, according to this configuration, it is possible to compare the servo band signal with the ideal waveform signal 66 corresponding to deformation in the width of the magnetic tape MT and / or deterioration of the servo read element SR in the BOT section 31A and the EOT section 31B.
[0210] Furthermore, in the magnetic tape system 10 according to this embodiment, a signal obtained by statistically analyzing a plurality of large waveform signals LWS (e.g., a signal representing an average waveform among the plurality of large waveform signals LWS) is employed as the first ideal waveform signal 66A. Therefore, with this configuration, a more reliable first ideal waveform signal 66A can be obtained compared to using a large waveform signal LWS randomly selected from the plurality of large waveform signals LWS as the first ideal waveform signal 66A. Furthermore, in the magnetic tape system 10 according to this embodiment, a signal obtained by statistically analyzing a plurality of small waveform signals SWS (e.g., a signal representing an average waveform among the plurality of small waveform signals SWS) is employed as the second ideal waveform signal 66B. Therefore, with this configuration, a more reliable second ideal waveform signal 66B can be obtained compared to using a small waveform signal SWS randomly selected from the plurality of small waveform signals SWS as the second ideal waveform signal 66B.
[0211] Furthermore, in the magnetic tape system 10 according to this embodiment, the geometric characteristics of the reference servo pattern 520 that is read by the servo read element SR to generate the ideal waveform signal 66 are the same as the geometric characteristics of the other servo patterns 52. Therefore, according to this configuration, it is possible to generate an ideal waveform signal 66 with high reliability, compared to a case where the geometric characteristics of the reference servo pattern 520 that is read by the servo read element SR to generate the ideal waveform signal 66 are completely different from the geometric characteristics of the other servo patterns 52.
[0212] In the magnetic tape system 10 according to this embodiment, the linear magnetization regions 54A1 and 54A2 inclined in opposite directions with respect to the virtual line C1 are read by the servo read element SR. In this case, as described above, variations due to azimuth loss occur between the first linear magnetization region signal S1a (see FIG. 10) and the second linear magnetization region signal S1b (see FIG. 10). However, even if variations occur between the first linear magnetization region signal S1a and the second linear magnetization region signal S1b, the magnetic tape system 10 according to this embodiment pre-stores an ideal waveform signal 66 in the storage 32, and detects a servo pattern signal by comparing the servo band signal with the ideal waveform signal 66. Therefore, according to this configuration, even if the linear magnetization regions 54A1 and 54A2 inclined in opposite directions with respect to the virtual line C1 are read by the servo read element SR, the servo pattern signal can be detected more accurately than when detecting the servo pattern signal using only a method of determining whether the signal level exceeds a threshold.
[0213] In the magnetic tape system 10 according to this embodiment, the first detection circuit 39A and the second detection circuit 39B are connected in parallel, and a common servo band signal is input to the first detection circuit 39A and the second detection circuit 39B. In this case, for example, the first detection circuit 39A compares the first servo band signal S1 with the first ideal waveform signal 66A to detect the second linear magnetization region signal S1b, and the second detection circuit 39B compares the first servo band signal S1 with the second ideal waveform signal 66B to detect the first linear magnetization region signal S1a. In other words, the first detection circuit 39A and the second detection circuit 39B detect the second linear magnetization region signal S1b and the first linear magnetization region signal S1a in parallel. The first position detector 30B1 detects as the servo pattern signal S1A the logical sum of the second linear magnetization region signal S1b detected by the first detector circuit 39A and the first linear magnetization region signal S1a detected by the second detector circuit 39B. Similarly to the first position detector 30A, the second position detector 30B2 detects in parallel the second linear magnetization region signal S1b and the first linear magnetization region signal S1a from the second servo band signal S2, and detects as the servo pattern signal S2A the logical sum of the second linear magnetization region signal S1b and the first linear magnetization region signal S1a. Therefore, according to this configuration, the first linear magnetization region signal S1a and the second linear magnetization region signal S1b are detected in parallel, so that the first linear magnetization region signal S1a and the second linear magnetization region signal S1b can be detected more quickly than when the first linear magnetization region signal S1a and the second linear magnetization region signal S1b are detected sequentially by sequentially comparing different ideal waveform signals (e.g., the first ideal waveform signal 66A and the second ideal waveform signal 66B) for one servo band signal.
[0214] In the magnetic tape system 10 according to this embodiment, the servo pattern signal is detected using an autocorrelation coefficient. Therefore, this configuration allows the servo pattern signal to be detected more accurately than when the servo pattern signal is detected using only a method of determining whether the signal level exceeds a threshold.
[0215] In the servo writer SW according to this embodiment, a device equivalent to the processing device 30 shown in FIG. 9 is incorporated into the servo writer controller SW5. Therefore, the servo writer controller SW5 performs an ideal waveform signal acquisition process, and then performs a servo pattern detection process using the ideal waveform signal 66 obtained for each frame 50 by the ideal waveform signal acquisition process. Therefore, the servo writer controller SW5 can inspect the servo bands SB by acquiring a position detection result from the servo pattern read result and determining whether the servo patterns 52 are correct or not using the position detection result. Therefore, the servo writer controller SW5 incorporating a device equivalent to the processing device 30 shown in FIG. 9 can detect the servo pattern signals more accurately than when detecting the servo pattern signals using only a method of determining whether the signal level exceeds a threshold. Therefore, the servo writer SW incorporating the servo writer controller SW5 can inspect the servo bands SB more accurately.
[0216] In the above embodiment, an example has been described in which the reference servo pattern 520 is recorded in the servo band DB for each frame 50. However, this is merely an example, and, for example, one reference servo pattern 520 may be recorded in the servo band DB for each of multiple frames 50. Also, multiple reference servo patterns 520 may be recorded in the data band DB for one frame 50. Also, one or more reference servo patterns 520 may be recorded in the data band DB at a position unrelated to the position of the frame 50. Also, one or more reference servo patterns 520 may be recorded in at least one data band DB of the BOT section 31A, the EOT section 31B, and the data recording section 31C.
[0217] Furthermore, in the above embodiment, an example was described in which the ideal waveform signal 66 derived from the reference servo pattern 520 of the data band DB2 is used to detect the servo pattern signals of each servo band SB (i.e., the servo pattern detection process), but the technology of the present disclosure is not limited to this. For example, the ideal waveform signal 66 used to detect the servo pattern signals of each servo band SB may be an ideal waveform signal 66 derived from the reference servo pattern 520 recorded in a data band DB adjacent to each servo band SB in the width direction WD, or may be a signal obtained by combining multiple ideal waveform signals 66 derived from multiple reference servo patterns 520 recorded in multiple data bands DB. In this case, for example, the ideal waveform signal 66 used to detect the servo pattern signal of the servo band SB2 may be an ideal waveform signal 66 obtained by combining the ideal waveform signal 66 derived from the reference servo pattern 520 of the data band DB2 and the ideal waveform signal 66 derived from the reference servo pattern 520 of the data band DB1. Here, synthesis refers to, for example, generating a signal that indicates a waveform obtained by statistically analyzing (e.g., averaging) a plurality of waveforms (e.g., the waveform of the ideal waveform signal 66 derived from the reference servo pattern 520 of data band DB2 and the waveform of the ideal waveform signal 66 derived from the reference servo pattern 520 of data band DB1).
[0218] In the above embodiment, an example has been described in which the result obtained by reading the reference servo pattern 520 with the servo read element SR is used as the ideal waveform signal 66, but the technology of the present disclosure is not limited to this. For example, as shown in Fig. 19, instead of the reference servo pattern 520, the result obtained by reading the reference servo pattern 522 with the servo read element SR may be used as the ideal waveform signal 66.
[0219] The reference servo pattern 522 is made up of a pair of linear magnetization regions 542. The geometric characteristics of the reference servo pattern 522 correspond to the geometric characteristics of the reference servo pattern 520 described in the above embodiment. The pair of linear magnetization regions 542 is made up of a pair of magnetization lines 542A and 542B. The magnetization line 542A is a magnetization line corresponding to one magnetization line 540A1a (see FIG. 12) included in the linear magnetization region 540A1, and the magnetization line 542B is a magnetization line corresponding to one magnetization line 540A2a (see FIG. 12) included in the linear magnetization region 540A2.
[0220] The servo read element SR reads the reference servo pattern 522 from the data band DB, and outputs a reference signal RS2 indicating the result of reading the reference servo pattern 522.
[0221] As an example, as shown in FIG. 20 , a reference signal RS2 is input to the control device 30A. The reference signal RS2 includes the small waveform signal SWS and the large waveform signal LWS described in the above embodiment. The control device 30A extracts the small waveform signal SWS and the large waveform signal LWS from the reference signal RS2 in the same manner as the small waveform signal SWS and the large waveform signal LWS were extracted from the reference signal RS1 in the above embodiment. Then, in the same manner as the above embodiment, the control device 30A stores the large waveform signal LWS extracted from the reference signal RS2 in the storage 32 as a first ideal waveform signal 66A, and stores the SWS extracted from the reference signal RS2 in the storage 32 as a second ideal waveform signal 66B. The first ideal waveform signal 66A and the second ideal waveform signal 66B stored in the storage 32 in this manner are used for comparison with the servo band signal in the servo pattern detection process.
[0222] 19, the magnetic tape MT has a data recording section 31C between the BOT section 31A and the EOT section 31B in the longitudinal direction LD of the magnetic tape MT, but the technology of the present disclosure is not limited to this. For example, as shown in FIG. 21, the magnetic tape MT may have multiple ideal waveform signal acquisition sections 31D between the BOT section 31A and the EOT section 31B in the longitudinal direction LD of the magnetic tape MT. The multiple ideal waveform signal acquisition sections 31D are an example of "multiple sections" according to the technology of the present disclosure.
[0223] The ideal waveform signal acquisition sections 31D are provided intermittently between the BOT section 31A and the EOT section 31B along the longitudinal direction LD. For example, the ideal waveform signal acquisition sections 31D are provided at regular intervals between the BOT section 31A and the EOT section 31B along the longitudinal direction LD. A plurality of reference servo patterns 522 are recorded along the longitudinal direction LD in the data band DB of the BOT section 31A, the data band DB of the EOT section 31B, and the data band DB of the ideal waveform signal acquisition section 31D.
[0224] Each reference servo pattern 522 in a plurality of ideal waveform signal acquisition sections 31D provided intermittently along the longitudinal direction LD of the magnetic tape MT is read by the servo read element SR, and each read result is used as the ideal waveform signal 66. Therefore, with this configuration, it is possible to obtain an ideal waveform signal 66 that conforms to the characteristics of the plurality of ideal waveform signal acquisition sections 31D (for example, the degree of deformation in the width of the magnetic tape MT).
[0225] 21, a plurality of ideal waveform signal acquisition sections 31D are provided at regular intervals along the longitudinal direction LD of the magnetic tape MT. The reference servo patterns 522 of each of the plurality of ideal waveform signal acquisition sections 31D are read by the servo read element SR, and each read result is used as the ideal waveform signal 66. Therefore, with this configuration, the ideal waveform signal 66 can be updated at regular intervals between the BOT section 31A and the EOT section 31B of the magnetic tape MT.
[0226] Note that Figure 21 shows an example in which a reference servo pattern 522 is recorded in each ideal waveform signal acquisition section 31D, but this is merely one example, and a reference servo pattern 520 (see Figure 14) may be recorded in each ideal waveform signal acquisition section 31D instead of or together with the reference servo pattern 522.
[0227] 21, multiple ideal waveform signal acquisition sections 31D are provided at regular intervals along the longitudinal direction LD of the magnetic tape MT, but the technology of the present disclosure is not limited to this. For example, multiple ideal waveform signal acquisition sections 31D may be provided across pre-designated locations in the longitudinal direction LD of the magnetic tape MT where the width of the magnetic tape MT is deformed. In this case, compared to when multiple ideal waveform signal acquisition sections 31D are arranged completely unrelated to the locations where the width of the magnetic tape MT is deformed, a highly reliable ideal waveform signal 66 can be used as the ideal waveform signal 66 to be compared with the servo band signal when magnetic head 28 performs magnetic processing on the locations where the width of the magnetic tape MT is deformed.
[0228] Furthermore, in the above embodiment, the ideal waveform signal 66 is stored in advance in the storage 32, but this is merely an example, and the ideal waveform signal 66 may be stored in the cartridge memory 24, for example. Furthermore, the ideal waveform signal 66 may be stored in a memory (not shown) of the external device 37, for example. The ideal waveform signal 66 may also be stored in the BOT section 31A of the magnetic tape MT and / or the EOT section 31B of the magnetic tape MT. The ideal waveform signal 66 may also be stored in a free area of the data band DB. In these cases, there is no need to store the ideal waveform signal 66 in the storage 32, and the capacity of the storage 32 can be increased by the amount of the ideal waveform signal 66 not stored.
[0229] Furthermore, in the above embodiment, the servo pattern 52 is exemplified, but the servo pattern 52 is merely an example, and the technology of the present disclosure is valid even if another type of servo pattern (i.e., a servo pattern with geometric characteristics different from those of the servo pattern 52) is used. In this case, as in the above embodiment, it is sufficient that a reference servo pattern with the same geometric characteristics as the servo pattern recorded in the servo band SB is recorded in the data band DB. In the following first to eighth modified examples, examples of magnetic tape MT on which a type of servo pattern different from the servo pattern 52 is recorded will be described. Note that, since it is sufficient that a reference servo pattern with the same geometric characteristics as the servo pattern recorded in the servo band SB is recorded in the data band DB, illustration and description of the reference servo pattern will be omitted below.
[0230] [First Modification] As an example, as shown in Figure 22, the magnetic tape MT according to the first modification differs from the magnetic tape MT shown in Figure 6 in that it has frames 56 instead of frames 50. The frames 56 are defined by a set of servo patterns 58. A plurality of servo patterns 58 are recorded in the servo band SB along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 58 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 52 recorded on the magnetic tape MT shown in Figure 6.
[0231] 22, servo patterns 58A and 58B are shown as an example of a set of servo patterns 58 included in a frame 56. The servo patterns 58A and 58B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 56, the servo pattern 58A is located on the upstream side in the forward direction, and the servo pattern 58B is located on the downstream side in the forward direction.
[0232] The servo pattern 58 is made up of linear magnetization region pairs 60. The linear magnetization region pairs 60 are classified into linear magnetization region pairs 60A and linear magnetization region pairs 60B.
[0233] The servo pattern 58A is made up of a pair of linear magnetization regions 60A. In the example shown in Fig. 22, a pair of linear magnetization regions 60A1 and 60A2 is shown as an example of the pair of linear magnetization regions 60A. Each of the linear magnetization regions 60A1 and 60A2 is a linearly magnetized region.
[0234] The linear magnetization regions 60A1 and 60A2 are tilted in opposite directions with respect to the virtual line C1. The linear magnetization regions 60A1 and 60A2 are non-parallel to each other and tilt at different angles with respect to the virtual line C1. The linear magnetization region 60A1 has a steeper tilt angle with respect to the virtual line C1 than the linear magnetization region 60A2. Here, "steep" means, for example, that the angle of the linear magnetization region 60A1 with respect to the virtual line C1 is smaller than the angle of the linear magnetization region 60A2 with respect to the virtual line C1. Furthermore, the total length of the linear magnetization region 60A1 is shorter than the total length of the linear magnetization region 60A2.
[0235] In the servo pattern 58A, the linear magnetization region 60A1 includes a plurality of magnetization lines 60A1a, and the linear magnetization region 60A2 includes a plurality of magnetization lines 60A2a. The number of magnetization lines 60A1a included in the linear magnetization region 60A1 is the same as the number of magnetization lines 60A2a included in the linear magnetization region 60A2.
[0236] The linear magnetization region 60A1 is a set of five magnetized straight lines 60A1a, and the linear magnetization region 60A2 is a set of five magnetized straight lines 60A2a. Within the servo band SB, the positions of both ends of the linear magnetization region 60A1 (i.e., the positions of both ends of each of the five magnetization straight lines 60A1a) and the positions of both ends of the linear magnetization region 60A2 (i.e., the positions of both ends of each of the five magnetization straight lines 60A2a) are aligned in the width direction WD. Note that, although an example is given here in which the positions of both ends of each of the five magnetization lines 60A1a and the positions of both ends of each of the five magnetization lines 60A2a are aligned, this is merely an example, and it is sufficient that the positions of both ends of one or more of the five magnetization lines 60A1a and the positions of both ends of one or more of the five magnetization lines 60A2a are aligned. Furthermore, in this embodiment, the concept of "aligned" not only means completely aligned, but also includes the meaning of "aligned" that includes an error that is generally acceptable in the technical field to which the technology of the present disclosure belongs and that does not contradict the spirit of the technology of the present disclosure.
[0237] The servo pattern 58B is made up of a pair of linear magnetization regions 60B. In the example shown in Fig. 22, a pair of linear magnetization regions 60B1 and 60B2 is shown as an example of the pair of linear magnetization regions 60B. Each of the linear magnetization regions 60B1 and 60B2 is a linearly magnetized region.
[0238] The linear magnetization regions 60B1 and 60B2 are tilted in opposite directions with respect to the virtual line C2. The linear magnetization regions 60B1 and 60B2 are non-parallel to each other and tilt at different angles with respect to the virtual line C2. The linear magnetization region 60B1 has a steeper tilt angle with respect to the virtual line C2 than the linear magnetization region 60B2. Here, "steep" means, for example, that the angle of the linear magnetization region 60B1 with respect to the virtual line C2 is smaller than the angle of the linear magnetization region 60B2 with respect to the virtual line C2. Furthermore, the total length of the linear magnetization region 60B1 is shorter than the total length of the linear magnetization region 60B2.
[0239] In the servo pattern 58B, the linear magnetization region 60B1 includes a plurality of magnetization lines 60B1a, and the linear magnetization region 60B2 includes a plurality of magnetization lines 60B2a. The number of magnetization lines 60B1a included in the linear magnetization region 60B1 is the same as the number of magnetization lines 60B2a included in the linear magnetization region 60B2.
[0240] The total number of magnetization lines 60B1a and 60B2a included in the servo pattern 58B is different from the total number of magnetization lines 60A1a and 60A2a included in the servo pattern 58A. In the example shown in Fig. 22, the total number of magnetization lines 60A1a and 60A2a included in the servo pattern 58A is 10, while the total number of magnetization lines 60B1a and 60B2a included in the servo pattern 58B is 8.
[0241] The linear magnetization region 60B1 is a set of four magnetized straight lines, ie, magnetization lines 60B1a, and the linear magnetization region 60B2 is a set of four magnetized straight lines, ie, magnetization lines 60B2a. Within the servo band SB, the positions of both ends of the linear magnetization region 60B1 (i.e., the positions of both ends of each of the four magnetization lines 60B1a) and the positions of both ends of the linear magnetization region 60B2 (i.e., the positions of both ends of each of the four magnetization lines 60B2a) are aligned in the width direction WD.
[0242] Here, an example is given in which the positions of both ends of each of the four magnetization lines 60B1a and the positions of both ends of each of the four magnetization lines 60B2a are aligned, but this is merely one example, and it is sufficient that the positions of both ends of one or more of the four magnetization lines 60B1a and the positions of both ends of one or more of the four magnetization lines 60B2a are aligned.
[0243] Furthermore, here, an example of a linear magnetization region 60A1 is a set of magnetization lines 60A1a, which are five magnetized lines; an example of a linear magnetization region 60A2 is a set of magnetization lines 60A2a, which are five magnetized lines; an example of a linear magnetization region 60B1 is a set of magnetization lines 60B1a, which are four magnetized lines; and an example of a linear magnetization region 60B2 is a set of magnetization lines 60B2a, which are four magnetized lines, but the technology of the present disclosure is not limited to this. For example, the linear magnetization region 60A1 may be a number of magnetization lines 60A1a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT, the linear magnetization region 60A2 may be a number of magnetization lines 60A2a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT, the linear magnetization region 60B1 may be a number of magnetization lines 60B1a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT, and the linear magnetization region 60B2 may be a number of magnetization lines 60B2a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT.
[0244] Here, the geometric characteristics of the linear magnetized region pair 60A on the magnetic tape MT will be described with reference to FIG.
[0245] 23, the geometric characteristics of the linear magnetization region pair 60A on the magnetic tape MT can be expressed using a virtual linear region pair 62. The virtual linear region pair 62 is made up of a virtual linear region 62A and a virtual linear region 62B. The geometric characteristics of the linear magnetization region pair 60A on the magnetic tape MT correspond to the geometric characteristics based on the virtual linear region pair 62 when the entire virtual linear region pair 62 is tilted with respect to the virtual line C1 by tilting the symmetry axes SA1 of the virtual linear regions 62A and 62B, which are tilted line-symmetrically with respect to the virtual line C1, with respect to the virtual line C1.
[0246] The virtual linear region pair 62 is a virtual linear magnetization region pair having the same geometric characteristics as the linear magnetization region pair 54A shown in Fig. 8. The virtual linear region pair 62 is a virtual magnetization region used for convenience in explaining the geometric characteristics of the linear magnetization region pair 60A on the magnetic tape MT, and is not an actual magnetization region.
[0247] The virtual linear region 62A has the same geometric characteristics as the linear magnetization region 54A1 shown in Fig. 8 and is made up of five virtual straight lines 62A1 corresponding to the five magnetization straight lines 54A1a shown in Fig. 8. The virtual linear region 62B has the same geometric characteristics as the linear magnetization region 54B1 shown in Fig. 8 and is made up of five virtual straight lines 62B1 corresponding to the five magnetization straight lines 54A2a shown in Fig. 8.
[0248] A center O1 is provided in the virtual linear region pair 62. For example, the center O1 is the center of a line segment L0 connecting the center of the straight line 62A1 located most upstream in the forward direction among the five straight lines 62A1 and the center of the straight line 62B1 located most downstream in the forward direction among the five straight lines 62B1.
[0249] 8, the virtual linear region pair 62 has the same geometric characteristics as the linear magnetization region pair 54A shown in FIG. 8, so the virtual linear region 62A and the virtual linear region 62B are tilted symmetrically with respect to the virtual line C1. Consider a case where the servo read element SR reads the virtual linear region pair 62 in a state where the entire virtual linear region pair 62 is tilted with respect to the virtual line C1 by tilting the symmetry axis SA1 of the virtual linear regions 62A and 62B by an angle a (for example, 10 degrees) with respect to the virtual line C1, with the center O1 as the rotation axis. In this case, there are some portions of the virtual linear region pair 62 in the width direction WD where the virtual linear region 62A is read but the virtual linear region 62B is not, or where the virtual linear region 62A is not read but the virtual linear region 62B is read. That is, when reading is performed by the servo read element SR in each of the imaginary linear regions 62A and 62B, there are insufficient portions and unnecessary portions.
[0250] Therefore, by supplementing the missing parts and cutting out the unnecessary parts, the positions of both ends of the imaginary linear region 62A (i.e., the positions of both ends of each of the five straight lines 62A1) are aligned with the positions of both ends of the imaginary linear region 62B (i.e., the positions of both ends of each of the five straight lines 62B1) in the width direction WD.
[0251] The geometric characteristics of the virtual linear region pair 62 thus obtained (i.e., the geometric characteristics of the virtual servo pattern) correspond to the geometric characteristics of the actual servo pattern 58 A. That is, in the servo band SB, a linear magnetization region pair 60A having geometric characteristics equivalent to the geometric characteristics of the virtual linear region pair 62 obtained by aligning the positions of both ends of the virtual linear region 62A and the positions of both ends of the virtual linear region 62B in the width direction WD is recorded.
[0252] The linear magnetization region pair 60B differs from the linear magnetization region pair 60A only in that it has four magnetization lines 60B1a instead of the five magnetization lines 60A1a and four magnetization lines 60B2a instead of the five magnetization lines 60A2a. Therefore, in the servo band SB, a linear magnetization region pair 60B having geometric characteristics equivalent to the geometric characteristics of a virtual linear region pair (not shown) obtained by aligning the positions of both ends of each of the four lines 62A1 and the positions of both ends of each of the four lines 62B1 in the width direction WD is recorded.
[0253] 24, a plurality of servo bands SB are formed on the magnetic tape MT in the width direction WD, and the frames 56 corresponding to each other between the servo bands SB are shifted at a predetermined interval in the longitudinal direction LD of the magnetic tape MT between the servo bands SB adjacent to each other in the width direction WD. This means that the servo patterns 58 corresponding to each other between the servo bands SB are shifted at a predetermined interval in the longitudinal direction LD of the magnetic tape MT between the servo bands SB adjacent to each other in the width direction WD.
[0254] The predetermined interval is determined based on the angle α, the pitch between adjacent servo bands SB in the width direction WD (hereinafter also referred to as the "servo band pitch"), and the frame length. In the example shown in FIG. 24, the angle α is exaggerated to make it easier to understand visually, but in reality, the angle α is, for example, approximately 15 degrees. The angle α is the angle formed by the imaginary line C1 and a pair of frames 56 that do not correspond to each other between adjacent servo bands SB in the width direction WD. In the example shown in FIG. 24, as an example of the angle α, the angle formed by the imaginary line C1 and one frame 56 (in the example shown in FIG. 24, one frame 56 of servo band SB3) of a pair of frames 56 that correspond to each other between adjacent servo bands SB in the width direction WD and a frame 56 adjacent to the other frame 56 (in the example shown in FIG. 24, one frame 56 of servo band SB2 that corresponds to the one frame 56 of servo band SB3) of the pair of frames 56 is shown. In this case, the frame length refers to the total length of the frame 56 in the longitudinal direction LD of the magnetic tape MT. The predetermined interval is defined by the following formula (1). Note that Mod(A / B) means the remainder when "A" is divided by "B".
[0255] (Default interval) = Mod{(servo band pitch × tan α) / (frame length)} (1)
[0256] 24 illustrates the angle α as the angle formed by the imaginary line C1 and one frame 56 (hereinafter also referred to as the "first frame") of a pair of frames 56 corresponding to each other in the width direction WD between adjacent servo bands SB, and the frame 56 adjacent to the other frame 56 (hereinafter also referred to as the "second frame") of the pair of frames 56. However, the technology of the present disclosure is not limited to this. For example, the angle α may be the angle formed by the imaginary line C1 and a frame 56 (hereinafter also referred to as the "third frame") that is two or more frames away from the second frame within the same servo band SB as the second frame. In this case, the "frame length" used in equation (1) is the pitch between the second frame and the third frame in the longitudinal direction LD of the magnetic tape MT (e.g., the distance from the leading edge of the second frame to the leading edge of the third frame).
[0257] 25, when the servo read element SR reads the servo pattern 58A (i.e., the pair of linear magnetized regions 60A) in a state where the directions of the virtual straight lines C1 and C3 are aligned (i.e., the longitudinal direction of the magnetic head 28 is aligned with the width direction WD), variations due to azimuth loss occur between the servo pattern signals derived from the linear magnetized regions 60A1 and the servo pattern signals derived from the linear magnetized regions 60A2. A similar phenomenon also occurs when the servo read element SR reads the servo pattern 58B (i.e., the pair of linear magnetized regions 60B) in a state where the directions of the virtual straight lines C1 and C3 are aligned (i.e., the longitudinal direction of the magnetic head 28 is aligned with the width direction WD).
[0258] 26, for example, the tilting mechanism 49 (see FIG. 8) skews the magnetic head 28 about the rotation axis RA on the magnetic tape MT so that the virtual line C3 is tilted by an angle β (i.e., the angle β in the counterclockwise direction when viewed from the front side of the paper in FIG. 26) upstream in the forward direction with respect to the virtual line C1. Since the magnetic head 28 is tilted by the angle β upstream in the forward direction on the magnetic tape MT in this way, the variation due to azimuth loss between the servo pattern signals derived from the linear magnetized regions 60A1 and the servo pattern signals derived from the linear magnetized regions 60A2 is reduced compared to the example shown in FIG. 25. Similarly, when the servo read element SR reads the servo pattern 58B (i.e., the linear magnetized region pair 60B), the variation due to azimuth loss between the servo pattern signals derived from the linear magnetized regions 60B1 and the servo pattern signals derived from the linear magnetized regions 60B2 is reduced.
[0259] [Second Modification] In the first modified example described above, an example in which the servo band SB is separated by a plurality of frames 56 along the longitudinal direction LD of the magnetic tape MT has been described, but the technology of the present disclosure is not limited to this. For example, as shown in FIG. 27 , the servo band SB may be separated by frames 70 along the longitudinal direction LD of the magnetic tape MT. The frame 70 is defined by a set of servo patterns 72. The servo band SB has a plurality of servo patterns 72 recorded along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 72 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 58.
[0260] 27, a pair of servo patterns 72A and 72B is shown as an example of a set of servo patterns 72. Each of the servo patterns 72A and 72B is an M-shaped magnetized servo pattern. The servo patterns 72A and 72B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 70, the servo pattern 72A is located on the upstream side in the forward direction, and the servo pattern 72B is located on the downstream side in the forward direction.
[0261] 28, the servo pattern 72 is made up of linear magnetization region pairs 74. The linear magnetization region pairs 74 are classified into linear magnetization region pairs 74A and linear magnetization region pairs 74B.
[0262] The servo pattern 72A is made up of a pair of linear magnetized regions 74A, which are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT.
[0263] 28 shows a pair of linear magnetization regions 74A1 and 74A2 as an example of the linear magnetization region pair 74A. The linear magnetization region pair 74A is configured similarly to the linear magnetization region pair 60A described in the first modified example above, and has similar geometric characteristics to the linear magnetization region pair 60A. That is, the linear magnetization region 74A1 is configured similarly to the linear magnetization region 60A1 described in the first modified example above, and has similar geometric characteristics to the linear magnetization region 60A1, and the linear magnetization region 74A2 is configured similarly to the linear magnetization region 60A2 described in the first modified example above, and has similar geometric characteristics to the linear magnetization region 60A2.
[0264] The servo pattern 72B is made up of a pair of linear magnetized regions 74B, which are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT.
[0265] 28 shows a pair of linear magnetization regions 74B1 and 74B2 as an example of the linear magnetization region pair 74B. The linear magnetization region pair 74B is configured similarly to the linear magnetization region pair 60B described in the first modified example above, and has similar geometric characteristics to the linear magnetization region pair 60B. That is, the linear magnetization region 74B1 is configured similarly to the linear magnetization region 60B1 described in the first modified example above, and has similar geometric characteristics to the linear magnetization region 60B1, and the linear magnetization region 74B2 is configured similarly to the linear magnetization region 60B2 described in the first modified example above, and has similar geometric characteristics to the linear magnetization region 60B2.
[0266] [Third Modification] In the example shown in Figure 27, the servo band SB is separated by a plurality of frames 70 along the longitudinal direction LD of the magnetic tape MT, but the technology of the present disclosure is not limited to this. For example, as shown in Figure 29, the servo band SB may be separated by frames 76 along the longitudinal direction LD of the magnetic tape MT. The frame 76 is defined by a set of servo patterns 78. The servo band SB has a plurality of servo patterns 78 recorded along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 78 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 72 (see Figure 27).
[0267] 29, servo patterns 78A and 78B are shown as an example of a set of servo patterns 78. Each of the servo patterns 78A and 78B is an N-shaped magnetized servo pattern. The servo patterns 78A and 78B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 76, the servo pattern 78A is located on the upstream side in the forward direction, and the servo pattern 78B is located on the downstream side in the forward direction.
[0268] 30, the servo pattern 78 is made up of linear magnetization region groups 80. The linear magnetization region groups 80 are classified into linear magnetization region groups 80A and linear magnetization region groups 80B.
[0269] The servo pattern 78A is made up of a linear magnetization region group 80A. The linear magnetization region group 80A is made up of linear magnetization regions 80A1, 80A2, and 80A3. The linear magnetization regions 80A1, 80A2, and 80A3 are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT. The linear magnetization regions 80A1, 80A2, and 80A3 are arranged in this order from the upstream side in the forward direction.
[0270] The linear magnetization regions 80A1 and 80A2 are configured similarly to the linear magnetization region pair 74A shown in Fig. 28 and have similar geometric characteristics. That is, the linear magnetization region 80A1 is configured similarly to the linear magnetization region 74A1 shown in Fig. 28 and has similar geometric characteristics, and the linear magnetization region 80A2 is configured similarly to the linear magnetization region 74A2 shown in Fig. 28 and has similar geometric characteristics. Furthermore, the linear magnetization region 80A3 is configured similarly to the linear magnetization region 80A1 and has similar geometric characteristics.
[0271] The servo pattern 78B is made up of a linear magnetization region group 80B. The linear magnetization region group 80B is made up of linear magnetization regions 80B1, 80B2, and 80B3. The linear magnetization regions 80B1, 80B2, and 80B3 are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT. The linear magnetization regions 80B1, 80B2, and 80B3 are arranged in this order from the upstream side in the forward direction.
[0272] The linear magnetization regions 80B1 and 80B2 are configured similarly to the linear magnetization region pair 74B shown in Fig. 28 and have similar geometric characteristics. That is, the linear magnetization region 80B1 is configured similarly to the linear magnetization region 74B1 shown in Fig. 28 and has similar geometric characteristics, and the linear magnetization region 80B2 is configured similarly to the linear magnetization region 74B2 shown in Fig. 28 and has similar geometric characteristics. Furthermore, the linear magnetization region 80B3 is configured similarly to the linear magnetization region 80B1 and has similar geometric characteristics.
[0273] [Fourth Modification] In the first modified example described above, the predetermined interval is defined based on the angle α, the servo band pitch, and the frame length. However, the technology of the present disclosure is not limited to this, and the predetermined interval may be defined without using the frame length. For example, as shown in Fig. 31, the predetermined interval is defined based on the angle α formed by the virtual line C1 and the frame 56 (in the example shown in Fig. 31, the line segment L3) that corresponds between the servo bands SB adjacent in the width direction WD, and the pitch between the servo bands SB adjacent in the width direction WD (i.e., the servo band pitch). In this case, for example, the predetermined interval is calculated using the following mathematical formula (2):
[0274] (default interval) = (servo band pitch) × tan α (2)
[0275] As described above, the frame length is not included in formula (2). This means that the predetermined interval can be calculated without taking the frame length into consideration. Therefore, with this configuration, the predetermined interval can be calculated more easily than when the predetermined interval is calculated from formula (1).
[0276] [Fifth Modification] In the first modified example described above, the servo bands SB are separated by a plurality of frames 56 along the longitudinal direction LD of the magnetic tape MT, but the technology of the present disclosure is not limited to this. For example, as shown in Fig. 32, the servo bands SB may be separated by frames 82 along the longitudinal direction LD of the magnetic tape MT.
[0277] A frame 82 is defined by a set of servo patterns 84. A plurality of servo patterns 84 are recorded in the servo band SB along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 84 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 52 (see FIG. 6) recorded on the magnetic tape MT (see FIG. 6).
[0278] 32, servo patterns 84A and 84B are shown as an example of a set of servo patterns 84 included in a frame 82. The servo patterns 84A and 84B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 82, the servo pattern 84A is located on the upstream side in the forward direction, and the servo pattern 84B is located on the downstream side in the forward direction.
[0279] The servo pattern 84A is made up of a pair of linear magnetization regions 86A. In the example shown in Fig. 32, a pair of linear magnetization regions 86A1 and 86A2 is shown as an example of the pair of linear magnetization regions 86A. Each of the linear magnetization regions 86A1 and 86A2 is a linearly magnetized region.
[0280] The linear magnetization regions 86A1 and 86A2 are tilted in opposite directions with respect to the virtual line C1. The linear magnetization regions 86A1 and 86A2 are non-parallel to each other and tilt at different angles with respect to the virtual line C1. The linear magnetization region 86A1 has a steeper tilt angle with respect to the virtual line C1 than the linear magnetization region 86A2. Here, "steep" means, for example, that the angle of the linear magnetization region 86A1 with respect to the virtual line C1 is smaller than the angle of the linear magnetization region 86A2 with respect to the virtual line C1.
[0281] Furthermore, the overall position of the linear magnetization region 86A1 and the overall position of the linear magnetization region 86A2 are misaligned in the width direction WD. That is, the positions of one end of the linear magnetization region 86A1 and one end of the linear magnetization region 86A2 are not aligned in the width direction WD, and the positions of the other end of the linear magnetization region 86A1 and the other end of the linear magnetization region 86A2 are not aligned in the width direction WD.
[0282] In the servo pattern 84A, the linear magnetization region 86A1 includes a plurality of magnetization lines 86A1a, and the linear magnetization region 86A2 includes a plurality of magnetization lines 86A2a. The number of magnetization lines 86A1a included in the linear magnetization region 86A1 is the same as the number of magnetization lines 86A2a included in the linear magnetization region 86A2.
[0283] The linear magnetization region 86A1 is a set of five magnetized straight lines 86A1a, and the linear magnetization region 86A2 is a set of five magnetized straight lines 86A2a.
[0284] In the servo band SB, the positions in the width direction WD of one end of all the magnetization straight lines 86A1a included in the linear magnetization region 86A1 are aligned, and the positions in the width direction WD of the other end of all the magnetization straight lines 86A1a included in the linear magnetization region 86A1 are also aligned. Also, in the servo band SB, the positions in the width direction WD of one end of all the magnetization straight lines 86A2a included in the linear magnetization region 86A2 are aligned, and the positions in the width direction WD of the other end of all the magnetization straight lines 86A2a included in the linear magnetization region 86A2 are also aligned.
[0285] The servo pattern 84B is made up of a pair of linear magnetization regions 86B. In the example shown in Fig. 32, a pair of linear magnetization regions 86B1 and 86B2 is shown as an example of the pair of linear magnetization regions 86B. Each of the linear magnetization regions 86B1 and 86B2 is a linearly magnetized region.
[0286] The linear magnetization regions 86B1 and 86B2 are tilted in opposite directions with respect to the virtual line C2. The linear magnetization regions 86B1 and 86B2 are non-parallel to each other and tilt at different angles with respect to the virtual line C2. The linear magnetization region 86B1 has a steeper tilt angle with respect to the virtual line C2 than the linear magnetization region 86B2. Here, "steep" means, for example, that the angle of the linear magnetization region 86B1 with respect to the virtual line C2 is smaller than the angle of the linear magnetization region 86B2 with respect to the virtual line C2.
[0287] Furthermore, the overall position of the linear magnetization region 86B1 and the overall position of the linear magnetization region 86B2 are misaligned in the width direction WD. That is, the positions of one end of the linear magnetization region 86B1 and one end of the linear magnetization region 86B2 are not aligned in the width direction WD, and the positions of the other end of the linear magnetization region 86B1 and the other end of the linear magnetization region 86B2 are not aligned in the width direction WD.
[0288] In the servo pattern 84B, the linear magnetization region 86B1 includes a plurality of magnetization lines 86B1a, and the linear magnetization region 86B2 includes a plurality of magnetization lines 86B2a. The number of magnetization lines 86B1a included in the linear magnetization region 86B1 is the same as the number of magnetization lines 86B2a included in the linear magnetization region 86B2.
[0289] The total number of magnetization lines 86B1a and 86B2a included in the servo pattern 84B is different from the total number of magnetization lines 86A1a and 86A2a included in the servo pattern 84A. In the example shown in Fig. 32, the total number of magnetization lines 86A1a and 86A2a included in the servo pattern 84A is 10, while the total number of magnetization lines 86B1a and 86B2a included in the servo pattern 84B is 8.
[0290] The linear magnetization region 86B1 is a set of four magnetized straight lines 86B1a, and the linear magnetization region 86B2 is a set of four magnetized straight lines 86B2a.
[0291] In the servo band SB, the positions in the width direction WD of one end of all the magnetization straight lines 86B1a included in the linear magnetization region 86B1 are aligned, and the positions in the width direction WD of the other end of all the magnetization straight lines 86B1a included in the linear magnetization region 86B1 are also aligned. Also, in the servo band SB, the positions in the width direction WD of one end of all the magnetization straight lines 86B2a included in the linear magnetization region 86B2 are also aligned, and the positions in the width direction WD of the other end of all the magnetization straight lines 86B2a included in the linear magnetization region 86B2 are also aligned.
[0292] Here, an example of a linear magnetization region 86A1 is a set of five magnetized straight lines, namely, magnetization lines 86A1a; an example of a linear magnetization region 86A2 is a set of five magnetized straight lines, namely, magnetization lines 86A2a; an example of a linear magnetization region 86B1 is a set of four magnetized straight lines, namely, magnetization lines 86B1a; and an example of a linear magnetization region 86B2 is a set of four magnetized straight lines, namely, magnetization lines 86B2a; however, the technology disclosed herein is not limited to this. For example, the linear magnetization region 86A1 may be a number of magnetization lines 86A1a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT, the linear magnetization region 86A2 may be a number of magnetization lines 86A2a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT, the linear magnetization region 86B1 may be a number of magnetization lines 86B1a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT, and the linear magnetization region 86B2 may be a number of magnetization lines 86B2a that contribute to determining the position of the magnetic head 28 on the magnetic tape MT.
[0293] Here, the geometric characteristics of the linear magnetized region pair 86A on the magnetic tape MT will be described with reference to FIG.
[0294] As an example, as shown in FIG. 33, the geometric characteristics of the linear magnetization region pair 86A on the magnetic tape MT can be expressed using the virtual linear region pair 62. Here, the symmetry axis SA1 of the virtual linear regions 62A and 62B is tilted by an angle a (e.g., 10 degrees) with respect to the virtual line C1, with the center O1 as the rotation axis, thereby tilting the entire virtual linear region pair 62 with respect to the virtual line C1. Then, in this state, the positions of one end of all straight lines 62A1 included in the virtual linear region 62A of the virtual linear region pair 62 in the width direction WD are aligned, and the positions of the other end of all straight lines 62A1 included in the virtual linear region 62A are also aligned. Similarly, the positions of one end of all straight lines 62B1 included in the virtual linear region 62B of the virtual linear region pair 62 are aligned, and the positions of the other end of all straight lines 62B1 included in the virtual linear region 62B are also aligned. As a result, the imaginary linear region 62A and the imaginary linear region 62B are shifted in the width direction WD.
[0295] That is, one end of the virtual linear region 62A and one end of the virtual linear region 62B are offset in the width direction WD by a constant interval Int1, and the other end of the virtual linear region 62A and the other end of the virtual linear region 62B are offset in the width direction WD by a constant interval Int2.
[0296] The geometric characteristics of the virtual linear region pair 62 thus obtained (i.e., the geometric characteristics of the virtual servo pattern) correspond to the geometric characteristics of the actual servo pattern 84 A. That is, the geometric characteristics of the linear magnetization region pair 86A on the magnetic tape MT correspond to the geometric characteristics based on the virtual linear region pair 62 when the entire virtual linear region pair 62 is tilted with respect to the virtual line C1 by tilting the symmetry axes SA1 of the virtual linear regions 62A and 62B, which are tilted line-symmetrically with respect to the virtual line C1, with respect to the virtual line C1.
[0297] The virtual linear region 62A corresponds to the linear magnetization region 86A1 of the servo pattern 84A, and the virtual linear region 62B corresponds to the linear magnetization region 86A2 of the servo pattern 84A. Therefore, the servo band SB records a servo pattern 84A consisting of a pair of linear magnetization regions 86A in which one end of the linear magnetization region 86A1 and one end of the linear magnetization region 86A2 are shifted in the width direction WD by a constant interval Int1, and the other end of the linear magnetization region 86A1 and the other end of the linear magnetization region 86A2 are shifted in the width direction WD by a constant interval Int2 (see FIG. 32).
[0298] The pair of linear magnetization regions 86B differs from the pair of linear magnetization regions 86A only in that it has four magnetization lines 86B1a instead of five magnetization lines 86A1a and four magnetization lines 86B2a instead of five magnetization lines 86A2a (see FIG. 32). Thus, a servo pattern 84B is recorded on the servo band SB, which is made up of the pair of linear magnetization regions 86B in which one end of the linear magnetization region 86B1 and one end of the linear magnetization region 86B2 are shifted in the width direction WD by a constant interval Int1 and the other end of the linear magnetization region 86B1 and the other end of the linear magnetization region 86B2 are shifted in the width direction WD by a constant interval Int2 (see FIG. 32).
[0299] 34, a plurality of servo bands SB are formed on the magnetic tape MT in the width direction WD, and frames 82 corresponding to each other between the servo bands SB are shifted at a predetermined interval in the longitudinal direction LD of the magnetic tape MT between adjacent servo bands SB in the width direction WD. This means that servo patterns 84 corresponding to each other between the servo bands SB are shifted at a predetermined interval in the longitudinal direction LD of the magnetic tape MT between adjacent servo bands SB in the width direction WD. The predetermined interval is defined by the formula (1) described in the first modified example above.
[0300] As in the first modified example, in the fifth modified example, as shown in FIG. 35 as an example, the tilting mechanism 49 (see FIG. 8) skews the magnetic head 28 about the rotation axis RA on the magnetic tape MT so that the imaginary line C3 is tilted by an angle β upstream in the forward direction relative to the imaginary line C1 (i.e., the angle β counterclockwise when viewed from the front side of the paper in FIG. 35). That is, the magnetic head 28 is tilted by an angle β upstream in the forward direction on the magnetic tape MT. In this state, when the servo read element SR reads the servo pattern 84A along the longitudinal direction LD within the range R where the linear magnetized regions 86A1 and 86A2 overlap in the width direction WD, the variation due to azimuth loss between the servo pattern signals derived from the linear magnetized regions 86A1 and 86A2 is reduced compared to the example shown in FIG. 25. Similarly, when the servo pattern 84B (i.e., the linear magnetization region pair 86B) is read by the servo read element SR, the variation due to azimuth loss between the servo pattern signal derived from the linear magnetization region 86B1 and the servo pattern signal derived from the linear magnetization region 86B2 is reduced.
[0301] [Sixth Modification] In the fifth modified example described above, an example in which the servo band SB is separated by a plurality of frames 82 along the longitudinal direction LD of the magnetic tape MT has been described, but the technology of the present disclosure is not limited to this. For example, as shown in FIG. 36, the servo band SB may be separated by frames 88 along the longitudinal direction LD of the magnetic tape MT. The frame 88 is defined by a set of servo patterns 90. A plurality of servo patterns 90 are recorded in the servo band SB along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 90 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 84 (see FIG. 32).
[0302] 36, a pair of servo patterns 90A and 90B is shown as an example of a set of servo patterns 90. Each of the servo patterns 90A and 90B is an M-shaped magnetized servo pattern. The servo patterns 90A and 90B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 88, the servo pattern 90A is located on the upstream side in the forward direction, and the servo pattern 90B is located on the downstream side in the forward direction.
[0303] 37, a servo pattern 90 is made up of linear magnetization region pairs 92. The linear magnetization region pairs 92 are classified into linear magnetization region pairs 92A and linear magnetization region pairs 92B.
[0304] The servo pattern 90A is made up of a pair of linear magnetized regions 92A, which are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT.
[0305] 37 shows a pair of linear magnetization regions 92A1 and 92A2 as an example of the linear magnetization region pair 92A. The linear magnetization region pair 92A is configured similarly to the linear magnetization region pair 86A (see FIG. 32) described in the fifth modified example, and has similar geometric characteristics to the linear magnetization region pair 86A. That is, the linear magnetization region 92A1 is configured similarly to the linear magnetization region 86A1 (see FIG. 32) described in the fifth modified example, and has similar geometric characteristics to the linear magnetization region 86A1, and the linear magnetization region 92A2 is configured similarly to the linear magnetization region 86A2 (see FIG. 32) described in the fifth modified example, and has similar geometric characteristics to the linear magnetization region 86A2.
[0306] The servo pattern 90B is made up of a pair of linear magnetized regions 92B, which are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT.
[0307] 37 shows a pair of linear magnetization regions 92B1 and 92B2 as an example of the linear magnetization region pair 92B. The linear magnetization region pair 92B is configured similarly to the linear magnetization region pair 86B (see FIG. 32) described in the fifth modified example, and has similar geometric characteristics to the linear magnetization region pair 86B. That is, the linear magnetization region 92B1 is configured similarly to the linear magnetization region 86B1 (see FIG. 32) described in the fifth modified example, and has similar geometric characteristics to the linear magnetization region 86B1, and the linear magnetization region 92B2 is configured similarly to the linear magnetization region 86B2 (see FIG. 32) described in the fifth modified example, and has similar geometric characteristics to the linear magnetization region 86B2.
[0308] [Seventh Modification] In the example shown in Figure 36, the servo band SB is separated by a plurality of frames 88 along the longitudinal direction LD of the magnetic tape MT, but the technology of the present disclosure is not limited to this. For example, as shown in Figure 38, the servo band SB may be separated by frames 94 along the longitudinal direction LD of the magnetic tape MT. The frame 94 is defined by a set of servo patterns 96. A plurality of servo patterns 96 are recorded in the servo band SB along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 96 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 90 (see Figure 36).
[0309] 38, servo patterns 96A and 96B are shown as an example of a set of servo patterns 96. Each of the servo patterns 96A and 96B is an N-shaped magnetized servo pattern. The servo patterns 96A and 96B are adjacent to each other along the longitudinal direction LD of the magnetic tape MT, and within the frame 94, the servo pattern 96A is located on the upstream side in the forward direction, and the servo pattern 96B is located on the downstream side in the forward direction.
[0310] 39, the servo pattern 96 is made up of linear magnetization region groups 98. The linear magnetization region groups 98 are classified into linear magnetization region groups 98A and linear magnetization region groups 98B.
[0311] The servo pattern 96A is made up of a linear magnetization region group 98A. The linear magnetization region group 98A is made up of linear magnetization regions 98A1, 98A2, and 98A3. The linear magnetization regions 98A1, 98A2, and 98A3 are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT. The linear magnetization regions 98A1, 98A2, and 98A3 are arranged in this order from the upstream side in the forward direction.
[0312] The linear magnetization regions 98A1 and 98A2 are configured similarly to the linear magnetization region pair 92A shown in Fig. 37 and have similar geometric characteristics. That is, the linear magnetization region 98A1 is configured similarly to the linear magnetization region 92A1 shown in Fig. 37 and has similar geometric characteristics. The linear magnetization region 98A2 is configured similarly to the linear magnetization region 92A2 shown in Fig. 37 and has similar geometric characteristics. Furthermore, the linear magnetization region 98A3 is configured similarly to the linear magnetization region 92A1 and has similar geometric characteristics.
[0313] The servo pattern 96B is made up of a linear magnetization region group 98B. The linear magnetization region group 98B is made up of linear magnetization regions 98B1, 98B2, and 98B3. The linear magnetization regions 98B1, 98B2, and 98B3 are arranged adjacent to each other along the longitudinal direction LD of the magnetic tape MT. The linear magnetization regions 98B1, 98B2, and 98B3 are arranged in this order from the upstream side in the forward direction.
[0314] The linear magnetization regions 98B1 and 98B2 are configured similarly to the linear magnetization region pair 92B shown in Fig. 37 and have similar geometric characteristics. That is, the linear magnetization region 98B1 is configured similarly to the linear magnetization region 92B1 shown in Fig. 37 and has similar geometric characteristics, and the linear magnetization region 98B2 is configured similarly to the linear magnetization region 92B2 shown in Fig. 37 and has similar geometric characteristics. Furthermore, the linear magnetization region 98B3 is configured similarly to the linear magnetization region 92B1 and has similar geometric characteristics.
[0315] [Eighth Modification] In the above-described first modified example (for example, the example shown in FIG. 22 ), an example in which the servo band SB is separated by a plurality of frames 56 along the longitudinal direction LD of the magnetic tape MT has been described, but the technology of the present disclosure is not limited to this. For example, as shown in FIG. 40 , the servo band SB may be separated by frames 560 along the longitudinal direction LD of the magnetic tape MT. The frame 560 is defined by a set of servo patterns 580. The servo band SB has a plurality of servo patterns 580 recorded along the longitudinal direction LD of the magnetic tape MT. The plurality of servo patterns 580 are arranged at regular intervals along the longitudinal direction LD of the magnetic tape MT, similar to the plurality of servo patterns 58.
[0316] The servo pattern 580 is made up of linear magnetization region pairs 600. The linear magnetization region pairs 600 are classified into linear magnetization region pairs 600A and linear magnetization region pairs 600B. That is, the linear magnetization region pairs 600 differ from the linear magnetization region pairs 60 (see FIG. 22) in that they have linear magnetization region pairs 600A instead of linear magnetization region pairs 60A, and linear magnetization region pairs 600B instead of linear magnetization region pairs 60B.
[0317] The servo pattern 580A is made up of a pair of linear magnetization regions 600A. The pair of linear magnetization regions 600A differs from the pair of linear magnetization regions 60A in that it has a linear magnetization region 600A1 instead of the linear magnetization region 60A1, and a linear magnetization region 600A2 instead of the linear magnetization region 60A2. Each of the linear magnetization regions 600A1 and 600A2 is a linearly magnetized region.
[0318] The linear magnetization regions 600A1 and 600A2 are inclined in opposite directions with respect to the virtual line C1. The linear magnetization regions 600A1 and 600A2 are non-parallel to each other and are inclined at different angles with respect to the virtual line C1. The linear magnetization region 600A2 has a steeper inclination angle with respect to the virtual line C1 than the linear magnetization region 600A1. Here, "steep" means, for example, that the angle of the linear magnetization region 600A2 with respect to the virtual line C1 is smaller than the angle of the linear magnetization region 600A2 with respect to the virtual line C1. Furthermore, the total length of the linear magnetization region 600A2 is shorter than the total length of the linear magnetization region 600A2.
[0319] The linear magnetization region 600A1 differs from the linear magnetization region 60A1 in that it has a plurality of magnetization lines 600A1a instead of the plurality of magnetization lines 60A1a. The linear magnetization region 600A2 differs from the linear magnetization region 60A2 in that it has a plurality of magnetization lines 600A2a instead of the plurality of magnetization lines 60A2a.
[0320] The linear magnetization region 600A1 includes a plurality of magnetization lines 600A1a, and the linear magnetization region 600A2 includes a plurality of magnetization lines 600A2a. The number of magnetization lines 600A1a included in the linear magnetization region 600A1 is the same as the number of magnetization lines 600A2a included in the linear magnetization region 600A2.
[0321] The linear magnetization region 600A1 is a linear magnetization region corresponding to the first axisymmetric region. The first axisymmetric region refers to a region in which the linear magnetization region 60A2 (see FIG. 22) described in the first modified example is formed axisymmetrically with respect to the virtual line C1. In other words, the linear magnetization region 600A1 can also be said to be a linear magnetization region formed with the geometric characteristics of a mirror image of the linear magnetization region 60A2 (see FIG. 22) (i.e., the geometric characteristics obtained by performing a mirror image of the linear magnetization region 60A2 (see FIG. 22) with the virtual line C1 as the axis of axisymmetrical symmetry).
[0322] The linear magnetization region 600A2 is a linear magnetization region corresponding to the second axisymmetric region. The second axisymmetric region refers to a region in which the linear magnetization region 60A1 (see FIG. 22) described in the first embodiment is formed axisymmetrically with respect to the virtual line C1. In other words, the linear magnetization region 600A2 can also be said to be a linear magnetization region formed with the geometric characteristics of a mirror image of the linear magnetization region 60A1 (see FIG. 22) (i.e., the geometric characteristics obtained by performing a mirror image of the linear magnetization region 60A1 (see FIG. 22) with the virtual line C1 as the axis of axisymmetrical symmetry).
[0323] In other words, in the example shown in Figure 23, the symmetry axis SA1 of the virtual linear regions 62A and 62B is tilted clockwise by an angle a when viewed from the front side of the paper in Figure 23, with the center O1 as the rotation axis, relative to the virtual straight line C1, and the geometric characteristics of the virtual linear region pair 62 obtained by aligning the positions of both ends of the virtual linear region 62A and the positions of both ends of the virtual linear region 62B when the entire virtual linear region pair 62 is tilted relative to the virtual straight line C1 correspond to the geometric characteristics of the servo pattern 580A.
[0324] The servo pattern 580B is made up of a pair of linear magnetization regions 600B. The pair of linear magnetization regions 600B differs from the pair of linear magnetization regions 60B in that it has a linear magnetization region 600B1 instead of the linear magnetization region 60B1, and a linear magnetization region 600B2 instead of the linear magnetization region 60B2. Each of the linear magnetization regions 600B1 and 600B2 is a linearly magnetized region.
[0325] The linear magnetization regions 600B1 and 600B2 are tilted in opposite directions with respect to the virtual line C2. The linear magnetization regions 600B1 and 600B2 are non-parallel to each other and tilt at different angles with respect to the virtual line C2. The linear magnetization region 600B2 has a steeper tilt angle with respect to the virtual line C2 than the linear magnetization region 600B1. Here, "steep" means, for example, that the angle of the linear magnetization region 600B2 with respect to the virtual line C2 is smaller than the angle of the linear magnetization region 600B2 with respect to the virtual line C2.
[0326] The linear magnetization region 600B1 includes a plurality of magnetization lines 600B1a, and the linear magnetization region 600B2 includes a plurality of magnetization lines 600B2a. The number of magnetization lines 600B1a included in the linear magnetization region 600B1 is the same as the number of magnetization lines 600B2a included in the linear magnetization region 600B2.
[0327] The total number of magnetization lines 600B1a and 600B2a included in the servo pattern 580B is different from the total number of magnetization lines 600A1a and 600A2a included in the servo pattern 580A. In the example shown in Fig. 40, the total number of magnetization lines 600A1a and 600A2a included in the servo pattern 580A is 10, while the total number of magnetization lines 600B1a and 600B2a included in the servo pattern 580B is 8.
[0328] The linear magnetization region 600B1 is a set of four magnetized straight lines, ie, magnetization lines 600B1a, and the linear magnetization region 600B2 is a set of four magnetized straight lines, ie, magnetization lines 600B2a. Within the servo band SB, the positions of both ends of the linear magnetization region 600B1 (i.e., the positions of both ends of each of the four magnetization lines 600B1a) and the positions of both ends of the linear magnetization region 600B2 (i.e., the positions of both ends of each of the four magnetization lines 600B2a) are aligned in the width direction WD.
[0329] In this way, the geometric characteristics of servo pattern 580A correspond to the geometric characteristics of the mirror image of linear magnetization region 60A2 (see FIG. 22) and the geometric characteristics of the mirror image of linear magnetization region 60A2 (see FIG. 22) (i.e., the geometric characteristics of the mirror image of servo pattern 58A shown in FIG. 22), and the geometric characteristics of servo pattern 580B correspond to the geometric characteristics of the mirror image of linear magnetization region 60B2 (see FIG. 22) and the geometric characteristics of the mirror image of linear magnetization region 60B2 (see FIG. 22) (i.e., the geometric characteristics of the mirror image of servo pattern 58B shown in FIG. 22). However, this is merely one example, and instead of servo pattern 580, a servo pattern formed with the geometric characteristics of the mirror image of servo pattern 72 shown in Figure 27, the geometric characteristics of the mirror image of servo pattern 78 shown in Figure 29, the geometric characteristics of the mirror image of servo pattern 84 shown in Figure 32, the geometric characteristics of the mirror image of servo pattern 90 shown in Figure 36, or the geometric characteristics of the mirror image of servo pattern 96 shown in Figure 38 may be applied.
[0330] Note that even when the geometric characteristics of the servo pattern are changed in this way, the tilt mechanism 49 changes the direction and angle of the tilt (i.e., azimuth) of the virtual line C3 relative to the virtual line C4 (for example, angle β shown in FIG. 26) in accordance with the geometric characteristics of the servo pattern. In other words, even when the geometric characteristics of the servo pattern are changed, the tilt mechanism 49, under the control of the control device 30A, rotates the magnetic head 28 about the rotation axis RA on the surface 31 of the magnetic tape MT, as in the first modified example, to change the direction and angle of the tilt (i.e., azimuth) of the virtual line C3 relative to the virtual line C4 (for example, angle β shown in FIG. 26) so as to reduce variations in the servo pattern signals.
[0331] [Other variations] In the above embodiment, the magnetic tape system 10 is exemplified as one in which the magnetic tape cartridge 12 is freely insertable into and removable from the magnetic tape drive 14, but the technology of the present disclosure is not limited to this. For example, the technology of the present disclosure can also be applied to a magnetic tape system in which at least one magnetic tape cartridge 12 is pre-loaded into the magnetic tape drive 14 (i.e., a magnetic tape system in which at least one magnetic tape cartridge 12 and the magnetic tape drive 14 are pre-integrated).
[0332] In the above embodiment, a single magnetic head 28 is exemplified, but the technology of the present disclosure is not limited to this. For example, multiple magnetic heads 28 may be arranged on the magnetic tape MT. For example, a read magnetic head 28 and at least one write magnetic head 28 may be arranged on the magnetic tape MT. The read magnetic head 28 may be used to verify data recorded on the data band DB by the write magnetic head 28. Furthermore, one magnetic head equipped with a read magnetic element unit 42 and at least one write magnetic element unit 42 may be arranged on the magnetic tape MT.
[0333] In the above embodiment, an example in which the processing device 30 (see FIG. 3) is realized by an ASIC has been described. However, the technology of the present disclosure is not limited to this. The processing device 30 may be realized by a software configuration. Furthermore, only the control device 30A and the position detection device 30B included in the processing device 30 may be realized by a software configuration. When the control device 30A and the position detection device 30B are realized by a software configuration, for example, as shown in FIG. 41, the processing device 30 includes a computer 200. The computer 200 has a processor 200A (e.g., a single CPU or multiple CPUs), an NVM 200B, and a RAM 200C. The processor 200A, the NVM 200B, and the RAM 200C are connected to a bus 200D. A program PG is stored in a portable storage medium 202 (e.g., an SSD or a USB memory), which is a computer-readable non-transitory storage medium.
[0334] The program PG stored in the storage medium 202 is installed in the computer 200. The processor 200A executes a servo pattern detection process (see FIG. 16), an ideal waveform signal acquisition process (see FIG. 17), and a reference servo pattern erasure process (see FIG. 18) in accordance with the program PG.
[0335] The program PG may also be stored in a storage device such as another computer or server device connected to the computer 200 via a communication network (not shown), and the program PG may be downloaded and installed in the computer 200 in response to a request from the processing device 30. The program PG is an example of a "program" according to the technology of the present disclosure, and the computer 200 is an example of a "computer" according to the technology of the present disclosure.
[0336] 41 illustrates a computer 200, the technology of the present disclosure is not limited to this, and a device including an ASIC, an FPGA, and / or a PLC may be applied instead of the computer 200. Also, a combination of a hardware configuration and a software configuration may be used instead of the computer 200.
[0337] The hardware resources that execute the processing of the processing device 30 (see FIG. 3) and / or the servo writer controller SW5 (see FIG. 14) can be various processors, as listed below. Examples of processors include a CPU, which is a general-purpose processor that functions as a hardware resource that executes processing by executing software, i.e., a program. Examples of processors also include dedicated electronic circuits, such as FPGAs, PLCs, or the exemplary ASICs, which are processors with a circuit configuration specifically designed to execute specific processing. Each processor has built-in or connected memory, and executes processing by using the memory.
[0338] The hardware resources that execute the processing of the processing device 30 and / or the servo writer controller SW5 may be configured with one of these various processors, or may be configured with a combination of two or more processors of the same or different types (for example, a combination of multiple FPGAs, or a combination of a CPU and an FPGA). Also, the hardware resources that execute the processing of the processing device 30 and / or the servo writer controller SW5 may be a single processor.
[0339] As an example of a single processor configuration, first, one processor is configured by combining one or more CPUs and software, and this processor functions as a hardware resource that executes processing. Second, there is a configuration in which a processor is used that realizes the functions of an entire system including multiple hardware resources that execute processing on a single IC chip, as typified by SoCs, etc. In this way, the processing of the processing device 30 and / or the servo writer controller SW5 is realized using one or more of the above-mentioned various processors as hardware resources.
[0340] Furthermore, the hardware structure of these various processors can be, more specifically, electronic circuits that combine circuit elements such as semiconductor devices. The processing of the processing device 30 and / or servo writer controller SW5 described above is merely an example. Therefore, it goes without saying that unnecessary steps may be deleted, new steps may be added, or the processing order may be rearranged, without departing from the spirit of the invention.
[0341] The above-described description and illustrations are a detailed explanation of the parts related to the technology of the present disclosure and are merely an example of the technology of the present disclosure. For example, the above description of the configuration, functions, actions, and effects is an explanation of an example of the configuration, functions, actions, and effects of the parts related to the technology of the present disclosure. Therefore, it goes without saying that unnecessary parts may be deleted, new elements may be added, or replacements may be made to the above-described description and illustrations within the scope of the gist of the technology of the present disclosure. Furthermore, to avoid confusion and facilitate understanding of the parts related to the technology of the present disclosure, the above-described description and illustrations omit explanations of common technical knowledge that do not require particular explanation to enable the implementation of the technology of the present disclosure.
[0342] In this specification, "A and / or B" is synonymous with "at least one of A and B." In other words, "A and / or B" means that it may be only A, only B, or a combination of A and B. Furthermore, in this specification, the same concept as "A and / or B" is also applied when three or more things are expressed connected by "and / or."
[0343] All publications, patent applications, and technical standards mentioned in this specification are herein incorporated by reference to the same extent as if each individual publication, patent application, or technical standard was specifically and individually indicated to be incorporated by reference. [Explanation of symbols]
[0344] 10 Magnetic Tape Systems 12 Magnetic tape cartridge 14 Magnetic Tape Drive 16 cases 16A Right Wall 16B opening 18 Upper case 20 Lower case 22, SW1 Delivery reel 22A reel hub 22B1 Upper flange 22B2 bottom flange 24 Cartridge Memory 24B,33 Back side 25 Controller 26 Transport equipment 28 Magnetic Head 29A magnetic layer 29B base film 29C Backcoat layer 30, SW5 Processing equipment 30A control device 30B Position detection device 30B1 First position detection device 30B2 Second position detection device 31 Surface 31A BOT section 31B EOT section 31C Data recording section 31D Ideal waveform signal acquisition section 32 Storage 34 UI devices 35 Communication Interface 36 Sending motor 37 External device 38,SW2 Take-up reel 39A First detection circuit 39B Second detection circuit 40M Winding motor 42 Magnetic element unit 44 Holder 46 Contactless reading and writing device 48 Moving mechanism 48A Moving Actuator 49 Tilt mechanism 49A Tilt Actuator 50, 56, 70, 76, 82, 88, 94, 560 frames 52, 52A, 52B, 58, 58A, 58B, 72, 72A, 72B, 78, 78A, 78B, 84, 84A, 84B, 90, 90A, 90B, 580, 580A, 580B Servo Pattern 54, 54A, 54B, 60, 60A, 60B, 74, 74A, 74B, 86, 86A, 86B, 92, 92A, 92B, 540A, 542, 600, 600A, 600B Linear magnetization region pair 54A1,54A2,54B1,54B2,60A1,60A2,60B1,60B2,74A1,74A2,74B1,74B2,80A1,80A2,80A3, 86A1,86A2,86B1,86B2,92A1,92A2,92B1,92B2,540A1,540A2,600A1,600A2,600B1,600B2 linear magnetization region 54A1a,54A2a,54B1a,54B2a,60A1a,60A2a,60B1a,60B2a,86A1a,86A2a,8 6B1a,86B2a,540A1a,540A2a,542A,542B,600A1a,600A2a,600B1a,600B2a magnetized straight line 62 Virtual Linear Area Pair 62A, 62B Virtual linear area 62A1,62B1 straight line 66 Ideal waveform signal 66A 1st ideal waveform signal 66B 2nd ideal waveform signal 68 Virtual Linear Pairs 68A, 68B Virtual linear area 80,80A,80B Linear magnetization region group 200 computers 200A Processor 200B NVM 200C RAM 200D Bus 202 Storage medium 520,522 Reference servo pattern A, B, C arrows a, b, α, β angles VH Verify Head C1, C2, C3, C4 Virtual lines DB, DB1, DB2 data band DRW Data read / write element GR guide roller Int1,Int2 interval L0, L1, L2 line segments LD Longitudinal direction LWS large waveform signal MF magnetic field MT magnetic tape O1,O2 center P point PG Servo pattern detection program RA rotation axis RS1, RS2 reference signal S1 First servo band signal RS1a, S1a, S1c 1st linear magnetization region signal S1A, S1B servo pattern signal RS1b, S1b, S1d 2nd linear magnetization region signal S2 Second servo band signal SA1, SA2 symmetry axis SB, SB1, SB2, SB3 servo band SR, SR1, SR2 servo read element SW Servo Writer SW3 drive unit SW4 Pulse signal generator SW6 Guide SW7 transport path SWS small waveform signal TH threshold TH1 First threshold TH2 Second threshold VH Verify Head WD Width direction WH servo pattern recording head
Claims
1. a processing device; a storage medium; The processing device includes: a servo read element reading the reference servo pattern from the magnetic tape on which the reference servo pattern is recorded, and storing the result as an ideal waveform signal representing an ideal waveform in the storage medium; acquiring a servo band signal resulting from the servo pattern recorded on the servo band of the magnetic tape being read by the servo read element; detecting a servo pattern signal resulting from reading the servo pattern by the servo read element by comparing the ideal waveform signal stored in the storage medium with the servo band signal; the magnetic tape has a data band; The reference servo pattern is recorded on the data band. Detection device.
2. The processing device causes the data recording element to overwrite data in the area in the data band where the reference servo pattern is recorded, thereby erasing the reference servo pattern. The detection device according to claim 1 .
3. A plurality of the reference servo patterns are recorded on the data band along the longitudinal direction of the magnetic tape. The detection device according to claim 1 or 2.
4. A plurality of the reference servo patterns are recorded on the data band from one end to the other end of the data band along the longitudinal direction. The detection device according to claim 3 .
5. The storage medium stores the ideal waveform signal in a state where the ideal waveform signal corresponds to the position of the reference servo pattern within the data band. The detection device according to any one of claims 1 to 4.
6. The servo band is divided into frames defined based on at least one set of the servo patterns, The reference servo pattern is recorded in the data band in correspondence with the frame. The detection device according to any one of claims 1 to 5.
7. The data band has a plurality of discontinuous sections along the longitudinal direction of the magnetic tape, The reference servo pattern is recorded in the plurality of sections. The detection device according to any one of claims 1 to 6.
8. The plurality of sections are provided across the longitudinal direction of the magnetic tape at locations previously designated as locations where the width of the magnetic tape is deformed. The detection device according to claim 7.
9. The plurality of sections are provided at regular intervals along the longitudinal direction of the magnetic tape.
9. The detection device according to claim 7 or claim 8.
10. The reference servo pattern is recorded between the BOT section and the EOT section in the data band.
10. The detection device according to claim 1.
11. The reference servo pattern is further recorded in at least one of a BOT section and an EOT section.
11. The detection device according to any one of claims 1 to 10.
12. The ideal waveform signal is a signal that indicates a statistical value of the result of reading the reference servo pattern. Detecting device according to any one of claims 1 to 11.
13. The geometric characteristics of the reference servo pattern correspond to the geometric characteristics of the servo pattern. Detecting device according to any one of claims 1 to 12.
14. the reference servo pattern is at least one first pair of linear magnetization regions; the first pair of linear magnetization regions is a linearly magnetized first linear magnetization region and a linearly magnetized second linear magnetization region, the first linear magnetization region and the second linear magnetization region are inclined in opposite directions with respect to a first virtual line extending along the width direction of the magnetic tape, The ideal waveform signals are classified into a first ideal waveform signal and a second ideal waveform signal, the first ideal waveform signal is a signal indicating a result of reading the first linear magnetization region by the servo read element, The second ideal waveform signal is a signal indicating the result of reading the second linear magnetization region by the servo read element. Detecting device according to any one of claims 1 to 13.
15. the servo pattern is at least one pair of second linear magnetization regions, the second pair of linear magnetization regions includes a linearly magnetized third linear magnetization region and a linearly magnetized fourth linear magnetization region, the third linear magnetization region and the fourth linear magnetization region are inclined in opposite directions with respect to a first virtual line extending along the width direction of the magnetic tape, the servo pattern signal includes a first signal resulting from reading the third linear magnetization region by the servo read element, and a second signal resulting from reading the fourth linear magnetization region by the servo read element; the processing device has a first detection circuit and a second detection circuit connected in parallel; The first detection circuit Acquire the servo band signal; detecting the first signal by comparing the servo band signal with the first ideal waveform signal; The second detection circuit Acquire the servo band signal; The second signal is detected by comparing the servo band signal with the second ideal waveform signal.
15. The detection device of claim 14.
16. The processing device detects the servo pattern signal using an autocorrelation coefficient. Detecting device according to any one of claims 1 to 15.
17. The magnetic tape is housed in a cartridge, The cartridge is provided with a non-contact type storage medium as the storage medium, which is capable of communicating with the processing device in a non-contact manner. Detecting device according to any one of claims 1 to 16.
18. The storage medium is the magnetic tape. Detecting device according to any one of claims 1 to 17.
19. a memory storing the ideal waveform signal to be compared with the servo band signal by the processing device included in the detection device according to any one of claims 1 to 18; the magnetic tape; A magnetic tape cartridge comprising:
20. 19. A magnetic tape on which the ideal waveform signal is stored, which is compared with the servo band signal by the processing device included in the detection device according to any one of claims 1 to 18.
21. having a BOT section and / or an EOT section, The ideal waveform signal is stored in the BOT section and / or the EOT section.
21. The magnetic tape of claim 20.
22. The data band is formed, The ideal waveform signal is stored in the data band.
22. The magnetic tape according to claim 20 or 21.
23. Servo band and a data band; and a magnetic tape comprising: A servo pattern is recorded in the servo band, a reference servo pattern to be read by a servo read element is recorded in the data band; An ideal waveform signal representing an ideal waveform, which is a result of the reference servo pattern being read by the servo read element, is compared with a servo band signal, which is a result of the servo band being read by the servo read element. Magnetic tape.
24. A magnetic tape cartridge containing the magnetic tape according to any one of claims 20 to 23.
25. A detection device according to any one of claims 1 to 18; an inspection processor that inspects a servo band on the magnetic tape where the servo pattern is recorded, based on the servo pattern signal detected by the detection device; An inspection device comprising:
26. A detection device according to any one of claims 1 to 18; a magnetic head that operates in accordance with the servo pattern signal detected by the detection device; A magnetic tape drive comprising:
27. a magnetic tape drive including the detection device according to any one of claims 1 to 18 and a magnetic head that operates in accordance with the servo pattern signal detected by the detection device; a magnetic tape that is magnetically processed by the magnetic head; A magnetic tape system comprising:
28. a servo read element reading the reference servo pattern from the magnetic tape on which the reference servo pattern is recorded, and storing the result as an ideal waveform signal in a storage medium; acquiring a servo band signal resulting from the servo pattern recorded on the servo band of the magnetic tape being read by the servo read element; and detecting a servo pattern signal resulting from the servo pattern being read by the servo read element by comparing the ideal waveform signal stored in the storage medium with the servo band signal; the magnetic tape has a data band; The reference servo pattern is recorded on the data band. Detection method.
29. and inspecting a servo band on the magnetic tape where the servo pattern is recorded, based on the servo pattern signal detected by the detection method according to claim 28. Testing method.
30. A program for causing a computer to execute a process, The process comprises: a servo read element reading the reference servo pattern from the magnetic tape on which the reference servo pattern is recorded, and storing the result as an ideal waveform signal in a storage medium; acquiring a servo band signal resulting from the servo pattern recorded on the servo band of the magnetic tape being read by the servo read element; and detecting a servo pattern signal resulting from the servo pattern being read by the servo read element by comparing the ideal waveform signal stored in the storage medium with the servo band signal; the magnetic tape has a data band; The reference servo pattern is recorded on the data band. program.
Citation Information
Patent Citations
Magnetic transfer method for perpendicular magnetic recording medium, perpendicular magnetic recording medium, and magnetic recording device
JP2008010028A
Head device, drive device, and tracking method
JP2009123288A
Method and device for forming servo pattern in magnetic disk
JP2010027112A
Magnetic tape reader, magnetic tape cartridge and magnetic tape reading method
JP2020140744A
Reading tape with transverse distortion
US6781784B2