GB2057177A - Multichannel magnetic head for a transducer system - Google Patents

Multichannel magnetic head for a transducer system Download PDF

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Publication number
GB2057177A
GB2057177A GB8026773A GB8026773A GB2057177A GB 2057177 A GB2057177 A GB 2057177A GB 8026773 A GB8026773 A GB 8026773A GB 8026773 A GB8026773 A GB 8026773A GB 2057177 A GB2057177 A GB 2057177A
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United Kingdom
Prior art keywords
transducers
tape
gap
gaps
transducer
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB8026773A
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GB2057177B (en
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RCA Corp
Original Assignee
RCA Corp
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Filing date
Publication date
Application filed by RCA Corp filed Critical RCA Corp
Priority to GB8026773A priority Critical patent/GB2057177B/en
Publication of GB2057177A publication Critical patent/GB2057177A/en
Application granted granted Critical
Publication of GB2057177B publication Critical patent/GB2057177B/en
Expired legal-status Critical Current

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Classifications

    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B5/00Recording by magnetisation or demagnetisation of a record carrier; Reproducing by magnetic means; Record carriers therefor
    • G11B5/127Structure or manufacture of heads, e.g. inductive
    • G11B5/187Structure or manufacture of the surface of the head in physical contact with, or immediately adjacent to the recording medium; Pole pieces; Gap features
    • G11B5/1871Shaping or contouring of the transducing or guiding surface
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B5/00Recording by magnetisation or demagnetisation of a record carrier; Reproducing by magnetic means; Record carriers therefor
    • G11B5/127Structure or manufacture of heads, e.g. inductive
    • G11B5/29Structure or manufacture of unitary devices formed of plural heads for more than one track
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B5/00Recording by magnetisation or demagnetisation of a record carrier; Reproducing by magnetic means; Record carriers therefor
    • G11B5/48Disposition or mounting of heads or head supports relative to record carriers ; arrangements of heads, e.g. for scanning the record carrier to increase the relative speed
    • G11B5/49Fixed mounting or arrangements, e.g. one head per track
    • G11B5/4969Details for track selection or addressing
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B5/00Recording by magnetisation or demagnetisation of a record carrier; Reproducing by magnetic means; Record carriers therefor
    • G11B5/48Disposition or mounting of heads or head supports relative to record carriers ; arrangements of heads, e.g. for scanning the record carrier to increase the relative speed
    • G11B5/52Disposition or mounting of heads or head supports relative to record carriers ; arrangements of heads, e.g. for scanning the record carrier to increase the relative speed with simultaneous movement of head and record carrier, e.g. rotation of head
    • G11B5/53Disposition or mounting of heads on rotating support
    • G11B5/531Disposition of more than one recording or reproducing head on support rotating cyclically around an axis

Abstract

In a multichannel head 10 of the type wherein a plurality of transducers 12, 14, 16, 18 scan signal tracks of information across a magnetic tape, and wherein each transducer includes a magnetic core having two pole pieces between which a transducing gap 20, 22, 24, 26 is disposed and at least one turn of a conductor 28, 30, 32, 34 magnetically coupled to the gap, the plurality of transducers are sequentially bonded together in an integral unit with their gaps disposed at essentially tandem locations. This avoids wasting recording space, increases accuracy of the head dimensions, and reduces length of contact travel between the head and a record medium e.g. tape. The transducer may be identical and bonded to a stepped carrier 50 (Figures 3a, 3b), or the transducer may be located in tandem along a longitudinal axis of the head, this axis being located at an angle to the tape transport direction (Figure 4a). <IMAGE>

Description

SPECIFICATION Multichannel magnetic head for a transducer system Multichannel recorder-reproducer systems are known in which transducers are individually mounted to concurrently scan separate tracks across a magnetic tape, such as in a longitudinal or helical manner. Consistent with required signal to noise ratios, each track must be narrow in width and all tracks must be precisely parallel along the direction of track scan, if recording space on the tape is not to be wasted. Since each transducer is mounted at a separate location along a perpendicular to the direction of tape travel in many prior art systems, recording space on the tape is wasted thereby due to the mounting tolerance and dimensional build-ups incurred therewith.Individual transducers are spaced along the direction of track scan in other prior art systems, to avoid the dimensional build-up incurred from the multiple mounting provisions of the transducers. However, this results in greater length of contact travel between the transducer arrangement and the tape, so that the pressure exerted therebetween has a greater distance over which to vary. Fabrication techniques are disclosed in United States Patents 3,544,982 and 3,634,933 for mounting a plurality of transducers in a compact magnetic head unit which substantially resolves these tolerance and dimensional build-up problems in applications which utilize guardbands to reduce crosstalk between adjacent channels.
A multichannel magnetic head constructed in accordance with the principles of the present invention substantially resolves the previously discussed tolerance and dimensional build-up problems for all applications, especially those which do not utilize guardbands. In this magnetic head the plurality of transducers are sequentially bonded together in an integral unit with their gaps disposed at essentially tandem locations.
In the drawings: Figures la and lb are the top and side views of a multichannel magnetic head in accordance with one preferred embodiment of the invention; Figure 1c illustrates a portion of tape that is scanned by the multichannel magnetic head of Figures 1 a and 1 b; Figure 2a is a top view of a multichannel magnetic head in accordance with another preferred embodiment of the invention; Figure 2b illustrates a portion of tape that is scanned by the multichannel magnetic head of Figure 2a; Figures 3a and 3b are the top and side views of a multichannel magnetic head in accordance with still another preferred embodiment of the invention; Figure 3c illustrates a portion of tape that is scanned by the multichannel magnetic head of Figures 3a and 3b;; Figure 4a is a top view of a multichannel magnetic head in accordance with a further preferred embodiment of the invention; and Figure 46 illustrates a portion of tape that is scanned by the multichannel magnetic head of Figure 4a.
One preferred embodiment of a multichannel magnetic head 10 in accordance with this invention is shown in Figures la (top view), and 1 b (side view) wherein four transducers 12, 14, 16, and 18 are sequentially bonded together in an integral unit.
Each of the transducers 12-18 include two pole pieces which are notched to define magnetic gaps 20,22,24, and 26 at essentially tandem locations.
Each gap 20-26 is magnetically coupled through at least one turn of a conductor, such as the separate coils of wire 28,30,32, and 34 which are disposed about one pole piece in each transducer 12-18 to control or pick up the magnetic field flowing therein.
Although the multichannel magnetic head 10 is very compact and quite small, Figures 1 a and 1 b are greatly expanded for the sake of clarity. The top surface of the multichannel magnetic head 10 is arcuately contoured (not shown) in most applications and a portion of the tape 36 travels thereover so that the gaps, 20, 22, 24 and 26 respectively, scan tracks 20', 22', 24', and 26' thereon, as shown in Figure 1c. When a contoured surface is utilized, measures are taken in fabrication to assure that an equal depth from the contoured surface is maintained for all of the gaps 20-26.
The coils of wire 28,30,32, and 34 are connected within a recorder-reproducer system (not shown) to either record signals onto the tracks 20', 22', 24', and 26' or reproduce signals therefrom. Because the transducers 12,14,16, and 18 are bonded together in an integral unit, only mounting tolerances for that unit are encountered in the recorder-reproducer system, rather than the build-up of such tolerances that is encountered when the plurality of transducers are individually mounted. Also, the dimensional build-up due to the multiple mounting provisions which are necessary when the plurality of transducers are individually mounted, is avoided. Although fabrication tolerances are encountered with the integral unit of the multichannel magnetic head 10, the gaps 20, 22, 24, and 26 are compactly located in tandem along the direction of tape travel.Therefore, the contact travel between the magnetic head 10 and the tape 36 is reduced, so that the pressure exerted therebetween has less distance over which to vary as compared with prior art tandem arangements of magnetic transducers. Furthermore, the tandem arrangements of those gaps permits the tracks 20'-26' to be disposed immediately adjacent to each other without any guardbands therebetween. Consequently, a more efficient uti::zation of recording space on the magnetic tape in the recorder reproduces system is accomplished with the compact multichannel magnetic head 10 O of this invention as compared to prior art.
The multichannel magnetic head 10 of this invention may be fabricated using any of several known techniques. As shown in Figures la and 1c, the scan width of each gap 20, 22. 24, and 26 and the relative locations of those gaps along perpendiculars to the direction of tape travel, are determined by the depth to which the pole pieces of each transducer 12, 14, 16, and 18 are notched. Therefore, the scan width of each gap 20-26 may be as narrow as desired and where guardbands are desired between the tracks 20'-26', the relative location of the gaps 20-26 along perpendiculars to the direction of tape travel may be spaced accordingly. Furthermore, magnetic shields (not shown) of conventional design may be disposed between adjacent transducers in the multichannel magnetic head 10 to reduce crosstalk.
Transducers 12, 14, 16, and 18 are bonded together using any suitable non-magnetic material, such as glass. The notches in the pole pieces of each transducer 12, 14, 16 and 18 may be filled with non-magnetic material, such as glass, and this may be accomplished concurrently with the transducers 12, 14, 16, and 18 being bonded together. Although each pole piece could be machined or ground separately, a technique is known whereby each transducer 12, 14, 16, and 18 is cut from a loaf. Two pieces of magnetic material are configured and joined in the loaf to provide the desired crosssectional configuration of the transducers, such as that shown generally in Figure 1 b.The gap length between the pole pieces is therefore determined by a portion of the interface between the pieces of magnetic material that are joined in the loaf and by depositing non-magnetic spacing material in that portion of the interface such as with a sputter process, the gap lengths may be precisely determined.
Figures 2a and 2b illustrate another embodiment of the invention wherein biased magnetic gaps 38, 40,42, and 44 are disposed in a multichannel magnetic head 46 to scan tracks 38', 40', 42', and 44' on a portion of a magnetic tape 48. As is commonly known in the art, biased magnetic gaps are those which have their scanning widths angularly dis posed relative to perpendiculars across the direction of tape travel, with the angles of adjacently scanning gaps being in adjacent quadrants relative to such perpendiculars. Consequently, one adjacently scan ning biased gap is disposed at an angle less than 90- relative to the direction of tape travel while the other is disposed at an angle greater than 90-.The pole pieces of each transducer in this embodiment may be fabricated using the same known techniques as those discussed previously, however, the biased gaps somewhat complicate the necessary machin ing process. As is known in the art, crosstalk is substantially reduced between signals of certain wavelengths on the tracks 38', 40', 42', and 44' of tape 48 due to the biased gaps 38, 40,42, and 44 of the multichannel magnetic head 46. Furthermore, the relative locations of the magnetic gaps 38-44 across the direction of tape travel may be spaced to provide guardbands, or magnetic shields may be disposed between adjacent transducers in the multichannel magnetic head 46 as was discussed previously in regard to the multichannel magnetic head 10.
To facilitate the fabrication of the magnetic heads shown in Figures 1 a and 1b or 2a, a stepped carrier 50 may be used as shown in Figures 3a (top view) and 3b (side view). The transducers with the magnetic gaps 52, 54,56, and 58 are individually bonded in the separate steps of the carrier 50. The pole pieces of each transducer could be individually machined and joined on the appropriate step of the carrier 50 or the transducers could be cut from a loaf as previously discussed. After each transducer is bonded to the carrier 50, notches 60, 62, 64, and 66 would then be ground into each transducer to determine the width and relative location of the tracks 52', 54', 56', and 58' to be scanned on a tape 68 as shown in Figure 3c.Separate coils of wire (not shown) are disposed about one pole piece in each transducer to control or pick up the magnetic field flowing therein in a manner similar to that shown and described for the magnetic head 10 of Figures la and 1 b. Although the gaps 52-58 are shown to be biased in this embodiment these gaps could be oriented perpendicularly across the direction of tape travel and the notches 60-66 could be ground to allow for guardbands or magnetic shields could be disposed to reduce crosstalk. As shown in Figure 3b the top surface of this magnetic head is contoured while gap depth equality is maintained by disposing the transducers at offsets in the integral unit.
Due to configuration symmetries, fabrication economies are possible in another embodiment of the invention. This embodiment is illustrated in Figures 4a and 4b where magnetic gaps 70,72,74, and 76 are spaced apart at desired distances and aligned in tandem along the elongated axis of a multichannel magnetic head 78. Because each transducer can be substantially identical in this embodiment, the pole pieces thereof can be fabricated in large quantities at appreciably lower costs. The multichannel magnetic head 78 is mounted within a recorder-reproducer system (not shown) with its elongated axis at an angle beta ( ;) to the direction of tape travel so that the gaps 70,72,74, and 76 scan tracks 70', 72', 74', and 76' across a portion of tape 80.Angle P is set in this embodiment to provide guardbands 82 between the adjacent tracks and crosstalk is reduced thereby between the signals on those tracks. The scan width of the tracks 70'-76' and the width of the guardbands 82 can be varied in this embodiment depending on the magnitude of angle 1l, with narrower tracks and wider guardbands being realized as beta is increased. Furthermore, angle P could be set to scan immediately adjacent tracks on tape 80 in still another embodiment of the invention and magnetic shields could be disposed between adjacent transducers in the multichannel magnetic head 78 to reduce crosstalk as was previously discussed. Also, the gaps in this embodiment could be bias oriented therein to reduce the crosstalk or oriented to scan perpendicularly across the direction of tape travel, when the multichannel magnetic head is disposed at the desired angle li within the recorder-reproducer system.

Claims (9)

1. A multichannel head of the type having a plurality of transducers which scan signal tracks of information across a magnetic tape within a system; and wherein each transducer includes a magnetic core having two pole pieces between which a gap is disposed, and at least one turn of a conductor magnetically coupled to the gap and the improvement comprising: the plurality of transducers being sequentially bonded together in an integral unit with their gaps disposed at essentially tandem locations.
2. A multichannel head according to Claim 1 wherein the gaps of the transducers are located along perpendiculars to the direction of tape travel with their scan widths and relative locations along those perpendiculars being determined by the depth of notches in the pole pieces of the transducers.
3. A multichannel head according to Claim 1 wherein the gaps of the transducers have their scanning widths angularly disposed relative to per pendiculars to the direction of tape travel, with the angles of adjacent gaps being in adjacent quadrants relative to such perpendiculars.
4. A multichannel head according to Claim 1 wherein the transducers are bonded to a stepped carrier with the gap of each transducer being located across the direction of tape travel by a separate step of said carrier and each gap having its scan width determined by the depth of a notch in the pole pieces of its transducer.
5. A multichannel head according to Claim 4 wherein the depth of the notches in the pole pieces of the transducers is sufficient to provide guardbands between the transducers.
6. A multichannel head of Claim 1 wherein the transducers are substantially identical.
7. A system of the type wherein a multichannel head having a plurality of transducers which scan signal tracks of information across a magnetic tape, with each transducer including a magnetic core having two pole pieces between which a gap is disposed and at least one turn of a conductor magnetically coupled to the gap, wherein: the plurality of transducers are substantially identical and sequentially bonded together in an integral unit with their gaps disposed at tandem location along an elongated axis, and the multichannel head being mounted with the elongated axis at an angle to the direction of tape travel.
8. A system of Claim 7 wherein the angle is set to provide guardbands between adjacent tape tracks.
9. A multichannel head substantially as hereinbefore described with reference to Figure lab b and c; Figure 2a and b; Figure 3a, b and c; or Figure 4a and b.
GB8026773A 1979-08-23 1980-08-15 Multichannel magnetic head for a transducer system Expired GB2057177B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
GB8026773A GB2057177B (en) 1979-08-23 1980-08-15 Multichannel magnetic head for a transducer system

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
GB7929476 1979-08-23
US8745079A 1979-10-22 1979-10-22
GB8026773A GB2057177B (en) 1979-08-23 1980-08-15 Multichannel magnetic head for a transducer system

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GB2057177A true GB2057177A (en) 1981-03-25
GB2057177B GB2057177B (en) 1984-07-11

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0067061A1 (en) * 1981-06-08 1982-12-15 Hitachi, Ltd. Azimuthal magnetic recording and reproducing apparatus
US4439793A (en) * 1981-10-22 1984-03-27 Fuji Photo Film Co., Ltd. Thin film head array
GB2299442A (en) * 1992-10-20 1996-10-02 Mitsubishi Electric Corp Multiple magnetic head assembly
US5883760A (en) * 1992-10-20 1999-03-16 Mitsubishi Denki Kabushiki Kaisha Magnetic structure and magnetic head using the same

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0067061A1 (en) * 1981-06-08 1982-12-15 Hitachi, Ltd. Azimuthal magnetic recording and reproducing apparatus
US4439793A (en) * 1981-10-22 1984-03-27 Fuji Photo Film Co., Ltd. Thin film head array
GB2299442A (en) * 1992-10-20 1996-10-02 Mitsubishi Electric Corp Multiple magnetic head assembly
GB2299442B (en) * 1992-10-20 1997-04-09 Mitsubishi Electric Corp Magnetic head assembly
US5883760A (en) * 1992-10-20 1999-03-16 Mitsubishi Denki Kabushiki Kaisha Magnetic structure and magnetic head using the same
US6236538B1 (en) 1992-10-20 2001-05-22 Mitsubishi Denki Kabushiki Kaisha Magnetic structure and magnetic head using the same

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Publication number Publication date
GB2057177B (en) 1984-07-11

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PCNP Patent ceased through non-payment of renewal fee