Tape head azimuth adjustment

Dynamic magnetic information storage or retrieval – Head mounting – For adjusting head position

Reexamination Certificate

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Details

Reexamination Certificate

active

06195238

ABSTRACT:

TECHNICAL FIELD
The present invention relates to mechanisms for adjusting the azimuth angle of a tape head relative to magnetic tape.
BACKGROUND ART
Magnetic tape is commonly used to store voice and data information due to its reliability, cost efficiency, and ease of use. Magnetic tape may be made more useful and cost effective by increasing the aerial density of information stored on the magnetic tape. This has generally been accomplished by including more data tracks on a given width of tape. While allowing more data to be stored, this increase in the number of data tracks requires a narrowing of the width of the data tracks, a narrowing of spacing between the data tracks, or both. As the data tracks are more closely spaced, positioning of the tape with respect to the tape head becomes more critical to reduce the possibility of errors introduced by reading or writing.
Tape heads generally include read elements for reading data from the magnetic tape and write elements for writing data to the magnetic tape. Typically, read elements may be formed in a read module with one read element for each data track that is to be read simultaneously. Similarly, write elements are manufactured into a write module, with one write element for each data track to be written simultaneously. To permit read-after-write operation on tape moving in either tape direction over the tape head, a typical tape head may include a sandwich of one write module between two read modules.
As the areal information density on magnetic tapes increases, the importance of accurately positioning the tape head relative to the magnetic tape also increases. One measure of the relationship between the tape head and the magnetic tape is the azimuth angle. The azimuth angle may be defined as the amount of rotation of the tape head about an axis through the tape and normal to the tape surface. An azimuth angle of zero implies that the tape head is rotationally aligned with the magnetic tape. Several problems may occur if the azimuth angle is too great. First, there may a loss of read amplitude if the read module is not aligned with data recorded on the magnetic tape. Second, in the case of a multiple element head, data buffer space may overflow due to the time skew between elements. Third, in the case of read-write-read heads implementing read-after-write operations, read elements must track corresponding write elements in order to check for write errors. Fourth, skew between the tape head and the magnetic tape creates relative vertical displacement between a read head in one read module and the corresponding read head in another read module. In order to minimize these effects, and because any tape written on one drive must be capable of being read on another drive, all tape heads must be aligned to a common azimuth standard.
Azimuth adjustment may be further complicated in tape drives that dynamically control the position of the tape head across the width of the magnetic tape. The tape head may be mounted in a carriage which is driven by an actuator to move the tape head across the tape width. Typically, the carriage and actuator are also rotated during azimuth adjustment.
Previous mechanisms permitting azimuth adjustment mount the tape head to one end of an arm with the opposing end fixed. The azimuth is adjusted by bending all or some of the arm about the fixed end. This caused translation of the tape head as well as rotation. Such translation cannot be absorbed within the closee tolerances required in a drive accessing high information density magnetic tape. Further, mechanisms employing an arm may not provide sufficient rigidity to support the carriage and the actuator.
What is needed is an azimuth adjustment mechanism that rotates the tape head about an axis through the center of the tape path. The mechanism should provide sufficient rigidity to support additional components such as the carriage and the actuator while still providing a sufficient range for azimuth adjustment.
DISCLOSURE OF INVENTION
It is an object of the present invention to provide for azimuth adjustment about an axis through the center of the tape path.
Another object of the present invention is to provide for very fine azimuth adjustment.
Still another object of the present invention is to provide for azimuth adjustment that rigidly supports the tape head and head actuator components.
Yet another object of the present invention is to provide for azimuth adjustment over a wide angular range.
In carrying out the above objects and other objects and features of the present invention, a frame is described for setting an azimuth angle of a tape head relative to magnetic tape passing by the tape head. The frame includes a first portion rigidly attached to a base and a second portion holding the carriage. Flexures are connected on a first end to the first portion and on a second end opposite the first end to the second portion. Each flexure is positioned such that, when the frame angle is at a preset value, the first end and the second end are radially aligned with the azimuth axis. The frame angle is the angle between the first portion and the second portion about an axis parallel to the azimuth axis. A drive is set between the first portion and the second portion. The drive rotates the second portion relative to the first portion by deflecting the flexures, thereby changing the azimuth angle.
In an embodiment of the present invention, the first portion defines a first threaded hole and the second portion defines a second threaded hole. The threaded holes share a substantially common centerline tangent to a circle centered on the azimuth axis. The drive includes a differential screw threaded into the first and second threaded holes.
In another embodiment of the present invention, each flexure includes a first thin portion connected to the first frame portion, a second thin portion connected to the second frame portion, and a thick portion connecting the first and second thin portions. In a refinement, each flexure is constructed of a plastically deformable material. At least one thin portion of each flexure deforms as the second frame portion rotates relative to the first frame portion.
In still another embodiment of the present invention, each flexure is formed from a thin plate.
An azimuth adjustment system for changing the azimuth of a tape head relative to magnetic tape traveling over the tape head is also provided. The system includes a carriage for holding the tape head and a base stationary in relation to the tape path. The system also includes a frame having a first portion and a second portion connected to first portion by a plurality of flexures. The first frame portion is rigidly attached to the base. The second frame portion holds the carriage. Each flexure is radially aligned about the azimuth axis when the frame angle is a preset value. The flexures permit rotation of the second frame portion relative to the first frame portion. The system further includes a drive set between the first frame portion and the second frame portion. The drive rotates the second frame portion relative to the first frame portion, thereby changing the azimuth angle.
The above objects and other objects, features, and advantages of the present invention are readily apparent from the following detailed description of the best mode for carrying out the invention when taken in connection with the accompanying drawings.


REFERENCES:
patent: 4158212 (1979-06-01), Dattilo
patent: 4254440 (1981-03-01), Martin
patent: 4268881 (1981-05-01), Saito
patent: 4316226 (1982-02-01), Nakamichi et al.
patent: 4329723 (1982-05-01), Schoenmakers
patent: 4485420 (1984-11-01), Schoenmakers
patent: 4550352 (1985-10-01), Nakao
patent: 4589040 (1986-05-01), Kawase
patent: 4616280 (1986-10-01), Kobayashi et al.
patent: 4639812 (1987-01-01), Nakamichi
patent: 4686588 (1987-08-01), Goto et al.
patent: 4809108 (1989-02-01), Tanaka et al.
patent: 4833558 (1989-05-01), Baheri
patent: 5043837 (1991-08-01), Okamura et al.
patent: 5050024 (1991-09-01), Nanjyo
patent: 5146377 (1992-09-01), Baheri

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