A disk drive apparatus includes a spindle for engagement with a central hole of a disk hub of a magnetic disk, a rotary member fixed to the spindle, a chucking magnet provided on the rotary member for attracting the disk hub, and a chucking lever pivotally provided on the rotary member which comes at its one end into engagement with a drive hole formed in the disk hub to rotate the disk. When the chucking lever is not chucking the disk, the chucking lever is pivotal about its pivot support point within a given angle, but its movement in the axial direction of the spindle is prevented. The pivot support point section is provided with a disengagement preventive lever which acts in relation to the rotary member to prevent the chucking lever from disengaging from the rotary member.
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0. 51. A disk drive apparatus for performing signal recording and reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor including:
a spindle; a rotary member fixed to the spindle for rotation with the spindle; a chucking mechanism including a drive pin provided to the rotary member and extending away from a surface of the rotary member that contacts the disk hub, said drive pin having a planar surface that contacts the disk hub during chucking, said drive pin planar surface extending in a plane that is inclined with respect to a plane containing said surface of said rotary member that contacts the disk hub.
0. 43. A disk drive apparatus for performing signal recording and reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor including:
a rotary member attached to a spindle for rotation with the spindle; and a chucking mechanism including a drive pin movable with respect to a surface of said rotary member that contacts the disk hub, said drive pin moving radially in a plane of the rotary member but not moving perpendicular to said plane, said drive pin extending perpendicular to said plane beyond said portion of the surface of said rotary member that contacts the disk hub, said drive pin including a disengagement preventative member that prevents said drive pin from moving relative to said rotary member in a direction perpendicular to said plane.
38. A disk driving motor assembly for use in a disk drive apparatus, for rotating a disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk driving motor assembly comprising:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in an axial direction of said spindle, said chucking lever including a disengagement preventive projection engageable with said rotary member to prevent said chucking lever from separating from said rotary member in said axial direction.
1. In a disk driving motor having a rotatable spindle for insertion through a central hole of a disk hub of a disk which is to be rotated by the disk driving motor, the disk hub having a drive hole offset from the central hole, said disk driving motor comprising:
a rotary member attached to the spindle for rotation with the spindle; and a chucking mechanism including: a chucking lever, said chucking lever pivotally attached to said rotary member for limited movement parallel to a plane containing a portion of a surface of said rotary member that contacts the disk hub, but no movement perpendicular to said plane; a drive pin located near one end of said chucking lever and extending perpendicular to said plane beyond said portion of the surface of said rotary member that contacts the disk hub; said chucking lever including a first disengagement preventative member; said rotary member including a second disengagement preventive member engaged with said first disengagement preventative member so as to prevent said chucking lever from disengaging from said rotary member.
29. A disk drive apparatus for performing a signal recording said reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor including:
a rotary member attached to the spindle for rotation with the spindle; and a chucking mechanism including: a chucking lever, said chucking lever pivotally attached to said rotary member for limited movement parallel to a plane containing a portion of a surface of said rotary member that contacts the disk hub, but no movement perpendicular to said plane; a drive pin located near one end of said chucking lever and extending perpendicular to said plane beyond said portion of the surface of said rotary member that contacts the disk hub; said chucking lever including a first disengagement preventative member; said rotary member including a second disengagement preventative member engaged with said first disengagement preventative member so as to prevent said chucking lever from disengaging from said rotary member.
42. A disk drive apparatus for performing signal recording and reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor assembly including:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in an axial direction of said spindle, said chucking lever including a disengagement preventive projection engageable with said rotary member to prevent said chucking lever from separating from said rotary member in said axial direction.
34. A disk driving motor assembly for use in a disk drive apparatus, for rotating a disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk driving motor assembly comprising:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub, said rotary member extending over substantially the entirety of only one side of said chucking lever; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in an axial direction of said spindle, said chucking lever being provided with a disengagement preventative mechanism engaged with said rotary member to prevent said chucking lever from separating from said rotary member.
30. A disk driving motor assembly for use in a disk drive apparatus, for rotating a disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk driving motor assembly comprising:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in an axial direction of said spindle, said chucking lever being provided with a disengagement preventive mechanism engaged with said rotary member to prevent said chucking lever from separating from said rotary member, without the need for a separate clamp extending over substantially the entire surface of said chucking lever.
41. A disk drive apparatus for performing signal recording and reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor assembly comprising:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub, said rotary member extending over substantially the entirety of only one side of said chucking lever; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in an axial direction of said spindle, said chucking lever being provided with a disengagement preventative mechanism engaged with said rotary member to prevent said chucking lever from separating from said rotary member.
40. A disk drive apparatus for performing signal recording and reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor assembly, including:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in an axial direction of said spindle, said chucking lever being provided with a disengagement preventive mechanism engaged with said rotary member to prevent said chucking lever from separating from said rotary member, without the need for a separate clamp extending over substantially the entire surface of said chucking lever.
22. A disk driving motor assembly for use in a disk drive apparatus, for rotating a disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk driving motor assembly comprising:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin located near one end of said chucking lever for engagement with the drive hole in the disk hub; said rotary member having a slot extending through a portion of said planar surface, said chucking lever extending over and permanently protruding into said slot so that edges of said slot limit movement of said chucking lever in a direction perpendicular to an axial direction of said spindle; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in said axial direction of said spindle, said chucking lever being provided with a disengagement preventive mechanism engaged with said rotary member to prevent said chucking lever from separating from said rotary member.
28. A disk drive apparatus for performing signal recording and reproducing on a disk accommodated in a cartridge, said disk having a disk hub with a central hole and a drive hole offset from the central hole, said disk drive apparatus having a disk drive motor assembly including:
a spindle for engagement with the central hole of the disk hub; a rotary member fixed to said spindle for rotation of said rotary member with said spindle, said rotary member having a planar surface; a chucking lever pivotally provided on said planar surface of said rotary member, and having a drive pin near one end of said chucking lever for engagement with the drive hole in the disk hub; said rotary member having a slot extending through a portion of said planar surface, said chucking lever extending over and permanently protruding into said slot so that edges of said slot limit movement of said chucking lever in a direction perpendicular to an axial direction of said spindle; wherein when said drive pin of said chucking lever is not engaged with the drive hole of the disk, the chucking lever is pivotal about a pivot support point within a given angle but is prevented from shifting in said axial direction of said spindle, said chucking lever being provided with a disengagement preventive mechanism engaged with said rotary member to prevent said chucking lever from separating from said rotary member.
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This is a Continuation-in-Part of application Ser. No. 07/894,839, filed Jun. 8, 1992, now U.S. Pat. No. 5,311,383.
This application is related to U.S. Pat. No. 5,303,102 entitled Disk Drive Apparatus Having Head Guard, to Tomoe Aruga et al and U.S. Pat. No. 5,303,104 entitled Disk Drive Apparatus Having Carriage Driving Mechanism to Tomoe Aruga et al. These applications and patents are incorporated herein by reference.
1. Field of the Invention
This invention relates to a disk drive apparatus for recording and reproducing information in and out of a floppy disk or the like, and more particularly, to a disk driving motor and chucking mechanism for a disk drive apparatus.
2. Description of Related Art
A disk driving motor assembly generally includes a disk chucking mechanism, and rotates a disk (held on a rotary member of the motor assembly by the chucking mechanism) together with the rotary member. Disk chucking mechanisms have been proposed in various forms. See, for example, Japanese Laid-Open Utility Model No. 61-52351.
In these drawings, 501 is a disk, 502 is a disk hub, and 503 is a spindle of the disk driving motor. A chucking lever 508 is pivotally attached, via a support point 516, to a rotary member 504, which is rotatable together with the spindle 503. A spring 514 is provided at support point
A disk drive apparatus according to the present invention will now be described with reference to the drawings.
The holder 4 holds the inserted cartridge 1, and is supported on a lower shield casing 5 so as to selectively move between an eject position and a recording/reproducing position defined for the cartridge 1. The holder 4 has four guide rollers 6 rotatably attached to four projected portions 4a located along the side edge thereof. Guide rollers 6 are received in four guide grooves 5a formed in the lower shield casing 5.
The shifting of holder 4 between the recording/reproducing position and the eject position will be described with reference to the schematic side views of
When cartridge 1 is inserted into the holder 4, and the holder 4 is shifted in the direction of the arrow a as shown in
To prevent the holder 4 from shifting in the direction of the arrow a as shown in
When the cartridge 1 is inserted into the holder 4, the trigger 9 in engagement with the stopper portion 5b of the lower shield casing 5 turns in the direction of the arrow e as shown in FIG. 1. In particular, a leading edge of cartridge 1 contacts a lower portion (not shown) of trigger 9 so as to cause trigger 9 to rotate in the direction of arrow e. As a result of pivotal movement of trigger 9, the trigger comes out of engagement with the stopper portion 5b of the lower shield casing 5. Thus, upon further movement of cartridge 1, the holder 4 and the cartridge 1 can be set to the position for recording/reproducing as shown in FIG. 4.
The ejection of the cartridge 1 will now be described. In
The lifter 11 has a lifter spring 16 coupled between lifter 11 and the lower shield casing 5 so that the lifter 11 is always urged so as to turn in the direction of the arrow f as shown in FIG. 2. Therefore, when the cartridge 1 is inserted as described above, causing holder 4 to move in the direction of arrow a in
Further, in
To prevent invasion of noise, dust and damage (via physical intrusions) to the inside of the disk drive apparatus due to rough handling, a shield casing 18 is attached to the upper surface of the lower shield casing 5. A runner sheet 19 is bonded to the inner surface of the shield casing 18 and functions as a slide member for reducing sliding-resistance and securing insulation. The runner sheet 19 is provided to make the sliding of an upper carriage (which holds an upper magnetic head) easy, decrease the friction between the shield casing 18 and the lifter 11, and attain load reduction. Further, the lifter 11 has a receive protrusion 11d which bears the load arising when an external force is applied to the shield casting 18, thereby preventing deformation of the shield casing 18. Thus, the shield casing 18 can be thin, and made from a light weight material such as aluminum. Even if the shield casing 18 and the receive protrusion 11d rub together, the runner sheet 19 of low friction prevents malfunctions due to rubbing.
A disk driving motor assembly for rotating the disk and a disk chucking mechanism for holding said disk while the motor is rotating, in accordance with a preferred embodiment of the present invention, will now be described.
In
In order to address the recent demand for thickness reduction in the field of computers, the thickness of the disk drive apparatus has been progressively reduced. In view of such demand, it is a common understanding of those concerned with design of disk drive apparatus that the demand for reducing the thickness of the spindle motor used in disk drive apparatus is very high. In view of these circumstances, the thickness of the rotor 22 of the spindle motor of the present invention is made as thin as possible in design, and thus, the preferred embodiment uses an iron plate having a thickness of 0.5 mm. However, if such a thin iron plate is press-fitted to the spindle 20, it is impossible to suppress the horizontal swinging (wobble) of the rotor 22 relative to the spindle 20 to be within a required level of stability because the axial length (relative to spindle 20) of such a fitting section is short. That is, it is difficult to secure the rotor 22 to the spindle 20 so that the rotor extends in a plane perpendicular to the longitudinal axis of spindle 20.
To overcome this problem, the spindle 20 is formed with a groove 20a in which an E-shaped snap ring 21 is fitted. Since the groove 20a is machined by a lathe or the like, the swinging of clip 21 relative to the spindle 20 can be suppressed sufficiently so as to be very small. Further, since press-fitting of rotor 22 on spindle 20 is performed until the rotor 22 comes into tight contact with the E-shaped snap ring, the rotor 22 can be set with a precision corresponding to the swinging precision of the groove 20a if the thickness of the E-shaped snap ring is uniform.
Accordingly, since it is possible to secure such a high degree of swinging precision, the upper surface of the rotor 22 can be used as a surface for directly receiving (contacting) and stabilizing the disk hub, whereby good contact can be secured between the disk and a recording/reproducing head.
Although the illustrative embodiment uses the E-shaped snap ring 21, the same effects as above can be obtained by the use of a C-shaped or other shaped snap ring.
A rotor magnet 23 attached to the rotor 22 for generation of the motor torque has one projected portion 23a along the circumference thereof. The projected portion is aligned with a notch 22a of the rotor 22, and is magnetized so as to exhibit two poles. Accordingly, during one revolution of the motor, one signal (called an index signal) can be generated by a magnetic sensor (not shown) which senses projected portion 23a.
It is preferable to provide the projected portion 23a with two poles as shown in
Further, the lower surface (as viewed in
In
The housing 27 has a metal bearing 30 and a ball bearing 31 press-fitted therein. The outer diameter of the ball bearing 31 is larger than the outer diameter of the metal bearing 30 so that a pressure for the side of the ball bearing 31 can be borne by an outer ring of the ball bearing 31. In the embodiment, housing 27 is made of plastic so that the bearing assembly can be press-fitted therein without causing significant deformation, damage, etc. to housing 27, which damage is sometimes caused by press-fitting of bearings. The spindle 20 is inserted into bearings 30 and 31.
The spindle motor is provided with a disk chucking mechanism as briefly described above. A more detailed description of the chucking mechanism will now be provided with reference to FIGS. 5 and 7-10.
The rotor 22 has a chucking magnet 32 bonded to the upper surface thereof, the chucking magnet 32 is formed with an opening through which the upper surface of the rotor can be seen. (That is, chucking magnet 32 is annular and does not cover the entire upper surface of rotor 22.) Disposed in the opening of chucking magnet 32 is a chucking lever 33 which rotates with rotor 22, and centers the magnetic disk after coming into engagement with the drive hole of the disk hub.
The chucking lever 33 is attached to the rotor 22 by means of a pivot support point 22b provided on the rotor 22 around which lever 33 can pivot. A guide portion 22c of the rotor 22 is slidably received in a groove 33b formed in a drive pin portion 33a of the chucking lever 33. Reference numeral 33c designates a disengagement preventive lever portion provided close to a pivot support portion 33d of the chucking lever 33. Disengagement preventive lever portion 33c engages the under side of a disengagement preventive pawl 22d of the rotor 22 so that the pivot support portion 33d is prevented from coming off the pivot support point 22b even upon the application of shock or the like to the disk drive apparatus.
In the illustrated embodiment, the chucking lever 33 is in the form of a single plastic (resin) component, and the disengagement preventive lever portion 33c is shaped so as to reach the under side of the disengagement preventive pawl 22d when assembled. Further, the upper surface of the rotor 22 on which the disk hub is received is provided with a coating 22e which is made of a low friction (slippery) material for the purpose of receiving the disk hub. The coating 22e has a circular shape and is concentric with the spindle 20.
The disk chucking mechanism of the preferred embodiment will be described in greater detail with reference to
In
Because of the foregoing configuration, the following takes place when a magnetic disk cartridge is loaded into the disk drive apparatus. Initially, when the hub 10a of the disk 10 is attracted by the chucking magnet 32 as shown in
Since in the initial unacquired state, the disk hub 10a and the upper surface of the drive pin portion 33a tend to slide and rub together, the upper surface of the drive pin portion 33a is made slightly inclined so as to increase its area in contact with the disk hub 10a. This angle of inclination is preferably 2±1.5 degrees.
It is possible that the disk hub 10a will come into contact with the chucking magnet 32 in such an inclined position. If the chucking magnet 32 is made of a material having a large friction coefficient (such as a rubber magnet), the disk hub 10a will turn together with the chucking magnet 32, with the result being that the drive pin portion 33a cannot come into engagement with the drive hole of the disk hub 10a. Therefore, a low friction (slippery) sheet is bonded to the upper surface of the chucking magnet 32, or a low friction coating is applied thereto. When a nylon-series plastic magnet is used, such a treatment as described above is not required because the plastic itself has a low friction coefficient.
Experiments have shown that to decrease the inclination of the disk hub 10a to thereby attain stable chucking, the length of engagement h between the drive pin portion 33a and the disk hub 10a, as shown in
The foregoing chucking configuration makes effective use of the space of the chucking section. That is, the outer diameter of the rotor of the motor has been decreased down to 40 mm, and the distance from the bottom surface of the motor circuit board to the upper surface of the rotor has been reduced down to 4 mm.
Further, the chucking mechanism needs none of the previously provided separate parts, such as support point members, drive pins and various springs. The chucking lever can be made in the form of a single plastic (resin) component, and the configuration can be simplified remarkably. Thus, the reliability can be enhanced, and the cost can be reduced.
The spindle motor 40 corresponds to the spindle motor described above in
The main frame 50 also has the carriage for shiftably holding the recording/reproducing magnetic head (not shown), etc., assembled thereto. In the embodiment, the main frame 50 is made of plastic for the purpose of weight reduction in compliance with an increasing demand brought by the down-sizing of computers. In
As described above, in a disk drive apparatus having the disk driving motor assembly according to the present invention, since the chucking lever 33 is provided on the rotary member 22 attached to the spindle 20, and the axial shifting of the drive pin 33a is prevented, a smaller space is required for the motor. Since the disengagement preventive lever portion 33c is provided adjacent to the pivot support portion 33d, the chucking lever can form a one piece disk chucking mechanism. Consequently, the total number of parts can be reduced, the efficiency of assembly work can be enhanced, and the size and thickness of the motor can be decreased. Accordingly, the size and thickness of the disk drive apparatus can be decreased.
If the rotor of the disk driving motor is used as the rotary member as in the preferred embodiment, the configuration can be simplified even further.
Further, by forming the circumferential groove in the spindle of the disk driving spindle motor, fitting the snap ring in the circumferential groove, and fitting the rotor of the spindle motor to the spindle and fixing it to the snap ring, the rotor can be reliably fixed to the spindle even though the axial length of the fitting section between the rotor and the spindle is short. Accordingly, the thickness and size of the disk drive apparatus can be decreased even more.
The portion of the chucking lever 33" that engages with the pivot pin 34 has a C-like form, i.e., a partly cut-out circular form. This portion is guided by the pivot pin 34 so that the chucking lever is pivotally supported in a manner so that it is not movable in the direction of the axis of the spindle 20.
This chucking lever 33" is made of plastic (more specifically, a material prepared by mixing 10 to 40 wt % of potassium titanate filaments or fibers in polyacetal resin) so that it is a fiber reinforced plastic. By virtue of the C-shaped engaging portion, assembly of the chucking lever to the rotary member 22 may be done so that the chucking lever 33" is fitted on (i.e., snapped onto) the pivot pin 34 after the pivot pin 34 has been inserted in the hole 22g of the rotary member 22. It is of course possible to assemble the device in such a way that the pivot pin 34 is inserted and attached in hole 22g after the C-shaped portion of the chucking lever has been put into engagement with the pivot pin 34. In such a way of assembly, however, the insertion step is rather difficult to conduct because three parts have to be handled together at the time of insertion of pin 34 into hole 22g.
The drive pin 33"a engages with a drive hole located at an eccentricity from the central hole of the disk hub 10a. The spindle 20 engages with the central hole of the disk hub 10a. The drive hole in the disk hub 10a is formed by pressing or punching a magnetic stainless steel plate without any post-processing. Consequently, the drive pin 33"a, which is made of plastic and which engages with the drive hole, can become worn due to frictional engagement with the drive hole. The portions of the drive pin 33"a that are engageable with the drive hole in the disk hub 10a are therefore flattened as indicated by 33"a1 and 33"a2. It is possible to reduce the wear of the drive pin 33"a by increasing the area of contact between the drive pin 33"a and the disk hub 10a by flattening the portions of the drive pin 33"a as detailed above.
Obviously, any tendency of the chucking lever 33" to move upward brings the lower surface of the rotary member 22 into contact with the upper surface of the chucking lever 33", thereby preventing upward movement of the chucking lever 33".
The pivot pin 34 prevents movement of chucking lever 33" in the axial direction of the spindle 20 without covering or contacting substantially the entirety of the lower surface of the chucking lever 33". This differs from, and is less bulky than, the structure disclosed in U.S. Pat. No. 4,697,216, in which the entire upper and lower surfaces of the ring plate (which includes the drive pin) is contacted by opposing surfaces of the yoke plate and the turntable, which together constitute a rotary member of a disk drive apparatus. Thus, in both the embodiments of
In the illustrated construction of
The upper face of the bush 35 provides a surface that receives the disk hub 10a. This surface is coated with a fluoro-resin as at 35a so as to attain low friction between the disk hub 10a and the bush 35.
While this invention has been described in conjunction with specific embodiments thereof, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art. For example, the features of the various different embodiments can be used with each other in various combinations. Accordingly, the preferred embodiments of the invention as set forth herein are intended to be illustrative, not limiting. Various changes may be made without departing from the spirit and scope of the invention as defined in the following claims.
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