Information
-
Patent Grant
-
6264593
-
Patent Number
6,264,593
-
Date Filed
Friday, January 29, 199925 years ago
-
Date Issued
Tuesday, July 24, 200123 years ago
-
Inventors
-
Original Assignees
-
Examiners
- Kim; Eugene
- Harmon; Christopher
Agents
- Hilton; William
- Sabourin; Robert A.
-
CPC
-
US Classifications
Field of Search
US
- 493 324
- 493 340
- 493 363
- 493 364
- 493 372
- 493 472
- 493 473
- 083 124
- 083 125
- 083 127
- 083 145
- 083 146
-
International Classifications
-
Abstract
A punch assembly is provided with a positive retraction mechanism to remove the punch from the media to be punched, thereby preventing binding of the punch in the media. The punch assembly includes a driving mechanism to provide a driving force on the punch and a positive retraction mechanism disposed to provide a retraction force on the punch operative sequentially following operation of the driving mechanism. The punch assembly, which is of a smaller size and more economical to manufacture, is particularly useful with an imagesetter of a prepress printing system. The punch may be mounted in a cantilever manner to punch the opening as close to the edge of the media as possible without interfering with the laser beam of the imaging assembly. In this maimer, the area of media available for imaging may be maximized and media waste minimized. Additionally, a shaft support mechanism is provided for the shaft upon which the retraction mechanism for each punch is mounted. When the punches advance into the media, an oppositely directed force is placed on the shaft. The shaft support mechanism supports the shaft when it is so loaded by the punches, thereby minimizing deflection of the shaft and allowing use of a smaller diameter shaft. Other equipment, such as take-up rollers which are used to transfer the media may also be fixed to the punch assembly. Similarly, a cutter assembly which cuts sheets of the media may also be fixed to the punch assembly.
Description
BACKGROUND OF THE INVENTION
In electronic prepress systems, images to be printed by offset printing are scanned from photographic sources, digitized, assembled, and edited electronically at a workstation. The images are then transmitted to a raster image processor (RIP) for half-tone screening and image rasterization. The RIP image, or rasterized image, to be printed is then transmitted from the RIP to an imagesetter for photographic or film recording onto a medium such as paper, film, or a printing plate.
An imagesetter includes a supply of unexposed photosensitive media, a recording support surface, and an image exposing system for forming the image to be recorded according to the RIP image data. The image exposing system may employ a laser beam, a cathode ray tube (CRT), an LED emitter, or the like as a radiation source. The media passes either as single sheets or from a supply roll as a web to the recording support surface at which point the photosensitive media is exposed by the radiation source, forming a latent image on the media. Numerous images may be recorded on the web consecutively. The exposed web is then advanced for transfer to a media processor where chemical processing occurs.
Three inks, yellow, magenta, and cyan, are used to print color images. Often black ink is also used. The links are printed in small dots, sometimes overlaid, in varying amounts to create the desired colors when viewed. Thus, three or four black and white separation films must be imaged, one for each color.
In the printing process, the films are overlaid and must be aligned accurately to ensure a good quality image. Toward this end, registration openings or holes are punched in each film to serve as an alignment guide. The location of each pixel on each film is determined with respect to the registration openings.
In prior art punch assemblies, the leading edge of the media is fed into a punch assembly, also referred to as a head punch assembly, in the imagesetter. The punches are forced through the media and held while the media is imaged. After imaging, the punches are retracted from the media. In prior art punch assemblies, the punches arc biassed toward the retracted position by a spring mechanism. Upon release of the punching force, which must be sufficient to overcome the spring bias force, the spring mechanism causes the punch to retract. The spring mechanism, however, has been found to permit binding of the punches in the media.
SUMMARY OF THE INVENTION
The present invention provides a head punch assembly having a positive retraction mechanism which prevents binding of the punch in the media. The punch assembly includes a driving mechanism to provide a driving force on the punch and a positive retraction mechanism disposed to provide a retraction force on the punch operative sequentially following operation of the driving mechanism. The punch assembly is of a smaller size and more economical to manufacture and is particularly useful with an internal drum imagesetter of a prepress printing system. The punch assembly includes a punch which may be mounted in a cantilever maimer to punch the opening as close to the edge of the media as possible without interfering with the laser beam of the imaging assembly. In this manner, the area of media available for imaging may be maximized and media waste minimized.
Another feature of the present invention is the provision of a roller support mechanism for the shaft upon which punch actuating mechanisms for each punch are mounted. When the punches push into the media, an oppositely directed force is placed on the shaft. The roller support mechanism supports the shaft when it is so loaded by the punches, thereby allowing use of a smaller diameter shaft and minimizing deflection of the shaft.
In another aspect of the present invention, the take-up roller assembly which is used to advance the media from the imagesetter may be mounted to the punch assembly. Similarly, the cutter assembly which cuts sheets of the media may also be mounted to the punch assembly. The assembly thereby takes up less space.
BRIEF DESCRIPTION OF THE DRAWINGS
The invention will be more fully understood from the following detailed description taken in conjunction with the accompanying drawings in which:
FIG. 1
is a schematic view which illustrates the media path through an imagesetter which includes a punch assembly according to the present invention;
FIG. 2
is a perspective view of selected components of the imagesetter of
FIG. 1
, particularly illustrating the position of the head punch assembly on the internal drum;
FIG. 3
is a detailed perspective view of the head punch assembly of
FIG. 2
;
FIG. 4A
is a detailed top perspective view of one punch of the punch assembly of
FIG. 3
;
FIG. 4B
is a detailed cutout front perspective view of one punch of the punch assembly of
FIG. 3
;
FIG. 4C
is a diagrammatic view illustrating the pictorial relationships between a laser beam and holes punched into a media in accordance with the principles of the present invention;
FIG. 4D
is a cross-sectional view taken along a plane perpendicular to the longitudinal axis of the internal drum of
FIG. 2
, illustrating selected components of the head punch assembly;
FIG. 5
is a side view of a further embodiment of a punch assembly according to the present invention;
FIG. 6
is a schematic view of a further embodiment of a multiple punch mechanism according to the present invention; and
FIG. 7
is a side view of the multiple punch mechanism of FIG.
5
.
DETAILED DESCRIPTION OF THE INVENTION
FIG. 1
schematically depicts selected portions of an electronic pre-press system including an internal drum imagesetter
10
with a punch assembly
12
according to the present invention. The imagesetter includes a media supply cassette
11
which supplies a photosensitive media
8
as a web. Alternatively, the web supply roll
11
may be replaced by a source of precut sheets of media. A drum
14
is mounted to a drum support or frame
19
. A leading edge of the media
8
resident in the media supply cassette
11
is drawn onto the internal drum surface
9
of the drum
14
via a drum input roller assembly
6
until the leading edge of the media is detected by a sensor
17
. A laser imaging system (not shown for clarity) transfers and records an image onto the media resident within the drum. The laser imaging system typically includes a laser diode located at or near the main central axis of rotation of the drum on a carriage that allows translation along the drum axis. The output beam from the laser diode is scanned by a rotating mirror across the media on surface
9
in successive circumferentially extending bands or paths referred to as scan lines. The laser diode output beam exposes specific pixel locations of the media along those scan lines to form the desired image. Because the imaged media is associated with a single color component of the image, the laser diode is turned on or off for those pixel locations that contain that color component and depending on whether a positive or negative image is be generated.
After imaging, the media is transferred from the drum
14
to a transfer buffer
18
via a drive roller assembly
15
. The media is transferred through a media path from the drum, which in this example is defined as the media path traversing from the roller assembly
15
to an opening
23
between platens
21
. After a predetermined length of the media
8
passes by the sensor
17
, a cutter assembly
16
cuts the media. The sheet of cut, imaged media entering the transfer buffer
18
is taken up into a first storage device
25
and continues to be drawn into the buffer
18
by drive rollers
27
until the trailing edge (not shown) of the sheet is in the vicinity of the opening
23
. Another strip of media is drawn into the drum
14
by the roller assembly
6
until the leading edge is again detected by the sensor
17
. The transfer buffer
18
is capable of taking in one sheet of media onto the storage device
25
and feeding out a previously stored sheet of media from additional storage device
29
via rollers
31
through platens
33
. The buffer
18
is mounted to rotate such that the storage device
25
is subsequently positioned to allow the sheet of media to be fed out of the buffer
18
through the platens
33
. Although two storage devices
25
and
29
are shown, any desired number of storage devices may be provided. The operations of the imagesetting system are controlled by a preinstalled software program in the controller
3
.
Referring more particularly to
FIGS. 2 through 4D
, the punch assembly
12
comprises a number of punch mechanisms
20
mounted to a stationary support
22
including a support plate
24
and spaced across the width of the media oath. The stationary support may be fixedly mounted to the drum support
19
of the imagesetter. The number and location of the punch mechanisms
20
are determined by the particular application and may accordingly vary. Each punch mechanism includes a punch
26
which is forced through the media to form the registration opening.
In operation, the leading edge of the media is fed into the punch assembly under the support plate
24
. The feeding stops, and the punch mechanisms
20
are actuated to drive the punches through the media. The punches remain in the media while imaging occurs. After imaging, the punches are actuated to positively retract them from the media. The media then is advanced by the roller assembly
15
for transfer to the buffer
18
and cut across its width by the cutter assembly
16
.
Each punch mechanism comprises a punch
26
, as noted above, and a punch guide
28
having an opening therethrough, with which the punch is aligned for linear reciprocal motion therethrough. The punch
26
is mounted in a cantilever manler, to allow the punch to form the registration opening as close to the edge of the media as possible without interfering with the imaging of the media by the laser diode output beam
70
. As indicated in
FIG. 4C
, the edge of the punch
26
may lie 0.125 inch from the center line of the laser beam on the media. As indicated in
FIG. 4D
, in the preferred embodiment, the center line of the punch
26
is 0.250 inch from the center line of the laser beam. In this manner, the area of the sheet of media available for imaging is maximized and waste of the media is minimized.
In the preferred embodiment, for example, the punch
26
is fixed to a punch carrier
30
by brackets
32
on the punch carrier. The punch carrier
30
is linearly movable to provide the reciprocating linear motion of the punch
26
within the opening in the punch guide
28
perpendicularly toward and away from the media. The punch carrier
30
is mounted to the stationary support plate
24
in any suitable manner which permits suitable linear motion of the punch, such as by a spring stabilizer mechanism
34
. The punch mechanism also includes a driving cam follower surface
36
and a retracting calm follower surface
38
, which form components of a punch driving mechanism
42
and a positive punch retraction mechanism
44
, respectively, described further below.
The punch assembly also includes a punch actuating mechanism
40
. In the preferred embodiment, the punch actuating mechanism includes a shaft
46
mounted for rotation, preferably to the stationary support
22
. A motor and gear assembly
48
may be provided to drive the rotation of the shaft in accordance with instructions from the controller
3
. The shaft may be supported in any suitable manner, such as with bearings
50
near or at the ends. A cam member
52
is fixedly mounted to the shaft for rotation with the shaft. For example, the shaft may include a flat
47
which corresponds to a flat on the cam member. The cam member includes a punch driving face
54
, which serves as a component of the punch driving mechanism
42
, and a punch retracting face
56
, which serves as a component of the positive punch retraction mechanism
44
. To drive the punch
26
into the media, the shaft
46
is rotated in a first direction. The punch driving face
54
of the cam member
52
strikes the driving cam follower surface
36
of the punch mechanism, thereby providing a force on the punch toward the media. In this maimer, the punch is forced into the media, forming the registration opening. To retract the punch from the media, the shaft
46
is rotated in a direction opposite to the first direction. The punch retracting face
56
of the cam member
52
strikes the retracting cam follower surface
38
of the punch mechanism, thereby providing a force on the punch away from the media. In this manner, the punch is retracted from the media. The positive retraction provided by this mechanism eliminates or minimizes binding of the punch in the media. The driving cam follower surface
36
and the retracting cam follower surface
38
may each include a bearing insert
41
made from a suitable bearing material, such as nylon, upon which the faces of the cam member bear. It will also be appreciated that, although the cam member
52
is shown as a single element having two cam faces, separate cam elements each providing one of the cam faces could be provided.
During manufacture, the punch mechanisms
20
may be located in any desired locations across the width of the media path. Any suitable number of punch mechanisms may be provided. The locations and number of punch mechanisms are determined by the particular application. The punch mechanisms are fixed on the stationary support plate
24
relative to the shaft so that their positions cannot be altered in the field. In this manner, the location of and spacing between punches can be controlled to within the desired tolerance and this tolerance can be maintained in the field, thereby ensuring that the location and spacing of the registration openings are consistent with repeated uses of the imagesetter. The punch mechanism can be fixed to the stationary support and relative to the shaft in any suitable manner. For example, a recess may be machined in the stationary support plate
26
to receive the punch guide
28
. The punch guide
28
may be fixed to the stationary support with screws or other suitable fasteners.
The punches
26
of a single punch assembly
12
may be of different cross-sectional configurations. For example, the punches may be circular, oval, rectangular, etc. The punches may have different diameters or other cross-sectional dimensions. The particular cross sections are determined by the particular application. Also, the length of each punch differs from the lengths of the other punches. Typically, the lengths become progressively greater from one end to the other. In this manner, all the punches are actuated at the same time by rotation of the shaft; however, each punch penetrates the media at a different time. In this way, the media is not loaded by all the punches simultaneously. The punches could also be independently actuated if desired.
The preferred embodiment of the present invention also provides one or more shaft support mechanisms
60
for the shaft
46
. As the punch
26
is driven into the media by the cam member
52
acting on the driving cam follower surface
36
, the punch carrier
30
provides an equal but oppositely directed force on the cam member
52
and hence on the shaft
46
. One or more of the shaft support mechanisms
60
are provided along the length of the shaft. Preferably two such shaft supports are provided, symmetrically located about a center point of the shaft, between two punch mechanisms or surrounding a centrally located punch mechanism. It will be appreciated, however, that the shaft support mechanisms may be disposed at other locations along the shaft. Similarly, any other desired number of shaft support mechanisms may be utilized.
The shaft support mechanism
60
comprises an arm
62
fixed to the stationary support
22
. A shaft contact or bearing element
64
is mounted on an end of the arm to extend above an upper portion of the shaft. The shaft contact element is accordingly also fixed in position relative to the stationary support
22
. As the shaft experiences a force in a direction away from the media by action of the punch mechanism on the cam member, the shaft
46
abuts against the shaft contact element
64
. The shaft contact element prevents deflection of the shaft above the location defined by the shaft contact element. In this manner, the shaft support mechanism of the present invention allows utilization of a smaller diameter shaft. The shaft contact element may be formed from any bearing material, such as nylon, suitable for contact with a metal.
The shaft contact element preferably is formed by a freely rotating roller bearing. The freely rotating roller bearing allows the shaft to rotate unimpeded. Other suitable contact elements which also allow unimpeded rotation of the shaft may be used, such as a flat or curved bearing surface.
The arm may be adjustable so that, during manufacture, the position of the contact element
64
can be set to contact the shaft. For example, in the embodiment shown, the arm
62
is pivotable about a pin
66
, and a set screw
68
is provided to set the limit of upward rotation of the arm. It should be noted that, although the shaft contact element is typically in continuous contact with the shaft, continuous contact is not necessary as long as the deflection of the shaft is maintained at a suitable minimum to prevent overstraining and failure of the shaft.
In another aspect of the present invention, the take-up roller assembly
21
which is used to advance the media from the imagesetter
10
may be mounted to the support
22
of the punch assembly. Similarly, the cutter assembly
23
which cuts the media across its width may also be mounted to the support
22
of the punch assembly. The assembly thereby takes up less space.
A further embodiment of the present invention is illustrated in FIG.
5
. In this embodiment, a cam member
152
is mounted for rotation on a shaft
146
. The cam member includes a punch driving face
154
which is in contact with an upper surface
136
of a punch
126
. As the cam member is rotated in a first direction, the punch driving face
154
forces the punch
126
through an opening
127
in a punch guide
128
into the media
114
, which is held by the punch guide. One or more and preferably a pair of brackets
137
are fixedly mounted to the punch
126
on either side of the punch. Each bracket has a surface
138
which abuts against a punch retracting face
156
of the cam member
152
. When rotation of the cam is reversed, the punch retracting face forces the brackets upwardly, thereby positively retracting the punch from the media.
In another embodiment, illustrated in
FIGS. 6 and 7
, a single cam member
252
may be provided to generate a driving force on a balanced punching plate
253
with multiple punches
226
. As illustrated in
FIGS. 6 and 7
, the cam member is mounted for rotation about a shaft
246
which is oriented at right angles to the orientation of the shaft
46
described above in conjunction with
FIGS. 2 through 4D
. It will be appreciated that the particular orientation of the rotation axis and design of the cam faces may vary depending, for example, on space requirements of the application. It will also be appreciated that a positive retraction mechanism (not shown in
FIGS. 5 and 6
) may be provided in accordance with the present invention.
While the invention has been particularly described in conjunction with an imagesetter for an electronic prepress printing system, the punch assembly and shaft support mechanism may be applicable to other types of equipment in which registration openings must be punched in sheets of media. Similarly, although illustrated as located at the exit area, the punch assembly could be located at the entrance area if desired for a suitable application. The invention is not to be limited by what has been particularly shown and described, except as indicated by the appended claims.
Claims
- 1. A punch assembly for punching one or more openings into a sheet of imageable media in an image setter, comprising:a punch mechanism comprising a punch and a punch guide having an opening therethrough for receiving the punch, the punch disposed for linear motion within the opening and into the sheet of imageable media located below the opening; and a punch actuating mechanism comprising: a driving mechanism rotatable in a first direction disposed to contact and provide a driving force at a first driving face of the punch to drive the punch within the opening in the punch guide through the sheet of imageable media and to hold the punch in the sheet of imageable media for a predetermined period of time sufficient for the sheet of imageable media to be imaged, and a positive retraction mechanism rotatable in a second direction that is opposite said first direction disposed to contact and provide a retraction force at a second driving face of the punch to retract the punch from the sheet of imageable media, the positive retraction mechanism operative sequentially following operation of the driving mechanism.
- 2. The punch assembly of claim 1, wherein the first driving face of the punch is disposed on an end of an elongated portion of the punch.
- 3. The punch assembly of claim 1, wherein the second driving face of the punch is disposed on a bracket member that extends from the elongated portion of the punch in a direction that is transverse to the elongated portion.
- 4. The punch assembly of claim 3, wherein the punch includes a pair of bracket members.
- 5. The punch assembly of claim 1, wherein the driving mechanism is a cam member mounted for rotation about an axis.
- 6. The punch assembly of claim 1, wherein the positive retraction mechanism is a cam member mounted for rotation about an axis.
- 7. The punch assembly of claim 1, wherein the punch actuating mechanism includes a cam member fixedly mounted to a rotatable shaft and an actuator for rotating the shaft about the shaft's axis.
- 8. The punch assembly of claim 7, further comprising a shaft support mechanism disposed to provide a counteracting force on the shaft in response to a deflecting force exerted on the shaft by the punch mechanism during a punch operation.
- 9. The punch assembly of claim 8, wherein the shaft support mechanism comprises a shaft contact element disposed to contact the shaft on a side of the shaft opposite the punch mechanism at a predetermined location, whereby deflection of the shaft is limited by the shaft contact element.
- 10. A punch assembly for punching one or more openings in a sheet of imageable media in an imaging system, comprising:a punch mechanism comprising a punch and a punch guide having an opening therethrough for receiving the punch, the punch disposed for linear motion within the opening and through the sheet of imageable media located below the opening; means for rotating in a first rotational direction, and for contacting and providing a driving force at a first driving face of the punch to push the punch in a first linear direction within the opening in the punch guide into the sheet of imageable media and to hold the punch in the sheet of imageable media for a predetermined period of time sufficient for the imageable media to be imaged; means for rotating in a second rotational direction that is opposite said first rotational direction, and for contacting and providing a retraction force at a second driving face of the punch to push the punch in a second linear direction opposite said first linear direction to retract the punch from the sheet of imageable media sequentially following operation of the means for providing a driving force.
- 11. The punch assembly of claim 10, wherein the first driving face of the punch is disposed on an end of an elongated portion of the punch.
- 12. The punch assembly of claim 10, wherein the driving mechanism is a cam member mounted for rotation about an axis.
- 13. The punch assembly of claim 10, wherein the positive retraction mechanism is a cam member mounted for rotation about an axis.
- 14. The punch assembly of claim 10, wherein the punch actuating mechanism includes a cam member fixedly mounted to a rotatable shaft and an actuator for rotating the shaft about the shaft's axis.
- 15. The punch assembly of claim 10, wherein the second driving face of the punch is disposed on a bracket member that extends from the elongated portion of the punch in a direction that is transverse to the elongated portion.
- 16. The punch assembly of claim 15, wherein the punch includes a pair of bracket members.
- 17. A punch assembly for punching one or more openings into a sheet of imageable media in an image setter, comprising:a punch mechanism comprising a punch and a punch guide having an opening therethrough for receiving the punch, the punch disposed for linear motion within the opening and into the sheet of imageable media located below the opening; and a punch actuating mechanism comprising: a driving mechanism rotatable in a first direction disposed to provide a driving force at an end of an elongated portion of the punch to push the punch against a first pushing surface on the punch and within the punch guide through the sheet of imageable media and to hold the punch in the sheet of imageable media for a predetermined period of time sufficient for the sheet of imageable media to be imaged, and a positive retraction mechanism rotatable in a second direction that is opposite said first direction disposed to contact and provide a retraction force at a retraction face that is disposed on a bracket member that extends from the elongated portion of the punch in a direction that is transverse to the elongated portion to push the punch from the sheet of imageable media, the positive retraction mechanism operative sequentially following operation of the driving mechanism.
- 18. The punch assembly of claim 17, wherein the punch includes a pair of bracket members.
- 19. The punch assembly of claim 17, wherein the driving mechanism is a cam member mounted for rotation about an axis.
- 20. The punch assembly of claim 17, wherein the positive retraction mechanism is a cam member mounted for rotation about an axis.
- 21. The punch assembly of claim 17, wherein the punch actuating mechanism includes a cam member fixedly mounted to a rotatable shaft and an actuator for rotating the shaft about the shaft's axis.
US Referenced Citations (6)