FIELD OF THE INVENTION
[0001] This invention relates to a transport system. It relates more particularly to a transport
system with electrostatic substrate retention for printing presses and other apparatus
requiring accurate positioning registration.
BACKGROUND OF THE INVENTION
[0002] In the world of machinery, there are various transport systems which are required
to carry substrates or articles from one station to another in order to have a succession
of operations performed on them. For example, in color printing, a paper substrate
is moved from one printing station to the next for the successive deposition of colors
onto the paper, with the color dots making up the image being brought into precise
registration at each successive printing station. Registration accuracy is required
because the different colored inks which reside on top of one another act collectively
as multiple filters which can produce a wide range of color hues when superimposed
thusly. Typically, for a 50 µm² printing dot, it would be desirable to maintain registration
to an accuracy in the order of ± 5µm.
[0003] Printing is not the only area in which the accurate transport of articles through
successive workstations is of concern. For example, in integrated circuit manufacturing
processes, semiconductor wafers have to be transported very precisely to successive
exposure, masking, etching and lead frame attaching stations in order to create the
finished products. Any mispositioning of the wafers results in wastage which can be
quite costly to the manufacturer. Mail sorting is another application of interest.
[0004] Depending upon the particular application, e.g., printing, mail sorting, etc., the
substrate carrier may be a belt or a cylinder. The carrier may even be a so-called
moving floor type of conveyor in which one carrier section reciprocates relative to
a stationary section with the latter section preventing any back sliding of the conveyed
article during rearward motion of the moving section.
[0005] Classically, the requirement to accurately transport substrates and other articles
has been solved using expensive and cumbersome precision mechanisms which usually
include mechanical grippers or vacuum holders to assure the retention of the substrate
or other article on its carrier. Carrier devices such as the paper cylinders used
in the printing industry are not only complicated and costly because of their elaborate
internal gripping mechanisms, but also they limit system speed because the mechanical
grippers with their actuators and cams impose serious cycle time restrictions. A further
disadvantage of these classical devices is their tendencies to damage the substrates
or other articles which they are gripping or clamping. Additionally, both mechanically
actuated retention mechanisms as well as vacuum operated suction devices are quite
noisy and thus they tend to disturb personnel working in the vicinity of the machines.
[0006] Accordingly, there is a need to be able to safely and reliably transport a variety
of substrates such as paper and plastic sheets, thin foils and other usually planar
media using minimum power and at operating speeds substantially in excess of the presently
attainable speeds.
[0007] Also, due to the high positioning registration accuracy required for color printing
applications, belt-type transports are usually not used to advance the paper or other
printing substrate from one printing station to the next because the belts tend to
wander laterally. It would be desirable to be able to provide a belt-type transport
system which can achieve good positioning registration accuracy at the printing or
other work stations served by the transport.
SUMMARY OF THE INVENTION
[0008] Accordingly, it is an object of the present invention to provide an improved system
for transporting a substrate or other planar article to achieve accurate positioning
registration.
[0009] Another object of the invention is to provide a transport system of this type which
uses non-mechanical means to retain the substrate to the transport carrier.
[0010] A further object of the invention is to provide a transport system which is able
to safely and reliably transport a variety at different articles including thin and
fragile substrates.
[0011] Another object of the invention is to provide a transport system which is particularly
applicable to color printing applications.
[0012] Another object of the invention is to provide a transport system which is quiet and
efficient in that it requires only a minimum amount of power.
[0013] Still another object of the invention is to provide a transport system which, while
using a driven belt carrier, can transport articles through successive work stations
and achieve accurate positioning registration at the work stations.
[0014] Other objects will, in part, be obvious, and will, in part, appear hereinafter.
[0015] The invention accordingly comprises the features of construction, combination of
elements and arrangement of parts which will be exemplified in the following detailed
description, and the scope of the invention will be indicated in the claims.
[0016] Briefly, my transport system comprises a movable carrier for conveying a substrate
through successive of work stations at which various operations are performed at selected
positions on the substrate. We will specifically describe a transport system incorporated
into a printing press for printing in color on a printing substrate such as paper
transported through the press. It should be understood, however, that various aspects
of the system may be used in other applications that require accurate positioning
of a substrate or other planar article. Also, we will dwell primarily on a transport
system incorporating a belt-type carrier. However, various features of the invention
can also be applied to transports utilizing drum-type carriers or reciprocating (moving
floor) carriers.
[0017] The belt-type carrier, in the form of a flexible belt loop, is stretched between
a pair of rollers, at least one of which is rotated by suitable motor drive. The upper
stretch of the belt loop passes through a plurality of work stations. In the case
of a press, the work stations consist of a succession of printing stations which are
arranged to apply different color printing to a substrate supported by the carrier.
[0018] In order to maintain the position of the substrate relative to the carrier, the belt
loop incorporates an electrostatic hold down grid. This is provided by a pattern of
interlaced electrodes which are embedded in the belt. An electrical potential is applied
to adjacent ones of these electrodes thereby forming powerful electrostatic fields
between the electrodes. The field lines extend above the surface of the belt and interact
with the substrate by inducing a capacitive charge in the substrate which, in turn,
produces a powerful electrostatic attraction of the substrate for the belt.
[0019] As will be described in detail later, provision may be made for deactivating the
electrodes at selected locations along the belt loop path so that the substrate is
no longer attracted to the belt at those locations. For example, as the electrodes
approach the exit end of the belt loop, they may be deactivated to allow the substrate
to be discharged from the carrier or handed off to another conveyor, rather than being
carried around to the underside of the belt loop.
[0020] As noted previously, in printing operations, it is very important to superimpose
color dots on top of each other in precise registration at the various printing stations.
For this reason, belt-type carriers are generally not used to transport the printing
substrate through the press because the belt tends to wander laterally and the speed
of the belt may also vary for one reason or another. However, the present transport
system, while using a belt-type carrier, avoids these problems by forminq in the belt,
along with the aforementioned electrodes, a cluster of fine longitudinal parallel
lines which extend all around the belt loop preferably near an edge thereof. These
lines are sensed by an optical sensor whose working surface is engraved with a line
pattern which forms with the lines on the belt an interference filter which can detect
the slightest lateral motions of the belt and produce an output signal representative
of the lateral drift of the belt. Also imbedded in the belt is a longitudinal series
of timing marks which form an optical clock track that extends all around the belt
loop. These marks are detected by a second optical sensor which produces an output
signal indicative of the speed of the belt. With this feature, it is possible to determine
precisely the longitudinal position of the belt at any point in time, even when the
transport speed varies, and hence, to initiate any action required at a certain position
of the belt.
[0021] The two signals are fed to a controller which thereupon 1) controls the position
of the belt to some extent, by means of a unique variable geometry roller to be described
and 2) adjusts minutely the lateral and longitudinal positions of the work members
at the various work stations so that they all operate at precisely the correct locations
on the substrate being transported by the belt.
[0022] In other words, the present system, after electrostatically holding the substrate
firmly in place on the belt or other carrier, maintains accurate position registration
for the substrate as it arrives at the successive workstations. For this, the system
tracks the motion of the belt or other carrier and applies signals to the various
workstations so that the work member at each workstation is located precisely at the
correct location relative to the substrate when the substrate arrives at that workstation.
The system is thus able to provide "predictive positioning" and the precise conjunction
of the substrate position with the work member position to an accuracy of less than
±5 µm.
[0023] When the belt version of my transport system is incorporated into a color press,
the drift of the belt as it wanders laterally can be predicted because of the inherent
periodicity of the control mechanism which adjusts the belt continuously as it moves.
Accordingly, the position of the write head at each printing station, which head operates
in conjunction with a print cylinder at that station, is continuously adjusted in
anticipation of the arrival of a print dot from the preceding station so that the
next dot will always be superimposed precisely on the preceding dot. In essence, the
print heads at the various print stations of the press are in continuous microscopic
motion, shifting laterally as they write images on the respective print cylinders
at those stations in accordance with calculations made by the system controller which
integrates the knowledge of belt motion and its periodicity of adjustment with that
of the necessary timing and location of the successive print heads. With this method
of anticipatory registration control, it is possible to print with color superposition
accuracies never achieved before using classical printing processes which typically
achieve registration accuracies no better than ±100 µm.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] For a fuller understanding of the nature and objects of the invention, reference
should be had to the following detailed description, taken in connection with the
accompanying drawings, in which:
FIG. 1 is an isometric view of a color press incorporating a transport system made
in accordance with this invention;
FIG. 2 is a fragmentary plan view on a larger scale of the carrier belt in the FIG.
1 system;
FIG. 3. is a fragmentary sectional view of a variable geometry guide roller used in
the FIG. 1 system;
FIG. 3A is a sectional view taken along line 3A-3A of FIG. 3;
FIG. 4 is a diagrammatic view of a belt-type transport system to enable two-sided
printing, and
FIG. 5 is a similar view of a reciprocating-type transport system incorporating my
invention.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0025] Referring now to FIG. 1 which shows my transport system incorporated into a three
color printing press. It should be understood however, that essentially the same transport
may be used in a four or five color press or in other applications in which planar
substrates have to be moved to successive work stations at which various position-sensitive
operations are performed on the substrate.
[0026] The transport system includes a flexible belt loop 10 made of a suitable strong,
resilient, tear resistant material such as a reinforced rubber or plastic material.
Belt 10 is stretched between a pair of rollers 12 and 13, one of which rollers, i.e.,
roller 13, may be rotated by a suitable motor 14 under the control of a system controller
15. Spaced along the belt loop 10 are similar print stations 16
a, 16
b and 16
c capable of printing three different colors on substrates S supported on the upper
stretch 10
a of the belt loop. For example, the print stations 16
a to 16
c may print the subtractive colors cyan, magenta and yellow, respectively.
[0027] When the press is in operation, the belt loop 10 is rotated in the clockwise direction
as indicated by the arrow A in FIG. 1. Substrates S, e.g., paper sheets, are deposited
successively onto the upper stretch 10
a of the belt loop by a suitable feeder (not shown). As each substrate S is transported
through the successive printing station 16
a to 16
c, images in different colors are printed on the substrate. As stated above, in the
illustrated apparatus these colors are cyan, magenta and yellow. In fact, these three
printed images represent the three color components or separations of an original
color document or image so that it is critical that the images be printed in exact
registration on each substrate S. The present system assures this first, by holding
each deposited substrate fast to the belt loop 10 as that substrate is transported
through the successive printing stations 16
a to 16
c and second, by controlling the printing operation carried out at each printing station
to account for any wanderings, or variations in speed, of the belt loop 10.
[0028] To achieve the first objective, the belt loop 10 incorporates an electrostatic hold-down
grid shown generally at 32 which grips each substrate S as the substrate is deposited
on the left end of the belt loop, holds the substrate flat against the belt as it
is transported through the press and releases the substrate when the substrate reaches
the exit or right hand end of the belt loop.
[0029] As best seen in FIGS. 1 and 2, the hold down grid 32 comprises a series of spaced
apart, interlaced, finger-like electrodes 34 and 36 which extend across the belt loop
10, the electrode series extending all around the belt loop. Corresponding ends of
the electrodes 34 are connected to a common electrode or bus 34
a which extends all around the belt loop adjacent to the left hand edge thereof. A
similar common electrode or bus 36
a connects the electrodes 36 near the right hand edge of the belt loop.
[0030] Preferably, the electrodes are situated under a high coefficient of friction film
38, e.g., neoprene or silicon rubber, applied to at least the entire outer surface
of the belt loop 10. This film 38 not only enhances the holding power of the belt
loop 10 for the substrate S, but also protects the electrodes from chemical erosion
or the effects of condensation which may be present during certain operating conditions.
Film 38 also insulates the electrodes and prevents direct manual contact with those
electrodes.
[0031] During operation of the apparatus, a power supply 42 supplies a potential difference
of about 1000 volts to busses 34
a and 36
a. The power supply may be connected to those electrodes by brushes 44
a and 44
b as shown in FIG. 1 or by appropriate rolling contacts. Those connections can also
be achieved by "capacitive coupling", whereby charges are induced into the hold down
grid by the displacement of electrons and holes using capacitor plates (not shown)
located in close proximity to the grid at some convenient location such as at the
end of the belt loop where it turns around the roller 12 or 13.
[0032] When the electrodes 34 and 36 are energized, they produce powerful electrostatic
fields between themselves all along their lengths. The field lines E reach above the
surface of the film 38 and interact with the substrate S deposited on the belt loop
10 so as to induce a capacitive charge in the substrate. This, in turn, gives rise
to a powerful electrostatic attraction of the substrate for the belt. This attraction
is, however, effective only at short distances from the belt such as the thickness
of the substrate and is effective only when the substrate is in intimate planar contact
with the belt. This characteristic is useful, for example, when the transport is being
used to route or sort articles such as mail, signatures in a bindery, etc., because
it prevents the double feeding of two documents.
[0033] Thus, the electrostatic hold down grid 32 coupled with the high friction film 38
firmly fixes the positions of the substrates S deposited on the belt loop 10. Furthermore,
the electrostatic hold down feature is effective over the entire area of the substrate,
and is, in fact, proportional to that area. The force F resisting sliding of the substrate
on belt loop 10 may be expressed as follows:

where A is the area of sheet S, e is the attraction force per unit area and µ₀ is
the coefficient of static friction.
[0034] On the other hand, it should be appreciated that the substrate can be peeled readily
from the belt 10 because the resistance forces against peeling are effective only
at a line-area which is smaller than e because the width of the line is less than
the unit area. With this in mind, it is obvious that at the end of the belt loop 10,
a substrate S can be removed easily in a departure path, which, in most cases, will
be tangential to the roller 14. In most cases, therefore, it suffices to have the
substrate S possess the stiffness of a normal sheet of paper which will cause it not
to be carried around the belt roller 14, but rather to be ejected in a straight line
direction off the exit end of the belt loop 10 as shown in FIG. 1.
[0035] In accordance with this invention, provision may be made for shutting off the electrostatic
hold down grid 32 at any zone or location along the belt path, for example, to facilitate
the handling of very thin and flimsy substrates or to assure that the substrates will
be picked up and discharged from the transport at the opposite ends of the belt loop
10. In other words, a flimsy substrate has no inherent rigidity. Therefore, it could
be carried around the roller 14 together with the belt and move to a possibly undesirable
position under the belt loop. Thus, to assist the substrate S to separate from the
belt loop, the hold down grid 32 may be shut off by disconnecting the appropriate
electrodes 34 and/or 36. In the illustrated apparatus, this is accomplished by connecting
each electrode 36 to its bus 36
a by way of a small photoelectric resistor 46. The resistance of the resistor is inversely
proportional to the intensity of light incident on the resistor. Thus, each resistor
46 essentially disconnects its electrode 36 from bus 36
a in the absence of light.
[0036] The illustrated electrostatic hold-down grid 32 is disabled at a selected location
or zone along the belt path by shielding the photo- resistors 46 from light at that
location. For example, to disable the grid below the belt stretch 10
a, a light shield 48 may be positioned underneath and around the ends of the belt path
as shown in FIGS. 1 and 3, allowing the substrate S to be picked up and released by
the belt loop 10.
[0037] As the present system assuredly fixes the position of the substrates S on the belt
loop 10, it also controls closely the lateral position of the belt and the printing
of the images on the substrates to compensate for any residual movements of the belt
loop that could prevent proper registration of the images being printed on the substrates
by the printing stations 16
a to 16
c. For this, there is incorporated into the belt loop 10 a timing track 52 consisting
of a series of opaque timing or clock marks 52
a spaced along the belt loop preferably at an edge thereof. The track 52 may be laid
down on the belt loop at the same time as the grid 32. These timing lines are detected
by an optical detector 54 which produces corresponding output signals to the controller
15. Thus, the timing track 52 and detector 54 constitute the master clock for the
system as a whole.
[0038] Also incorporated into the belt loop 10 along with track 52, preferably near an edge
thereof, is a belt position track shown generally at 56 in FIG. 2. Track 56 consists
of a cluster of narrow, spaced apart parallel opaque lines 56
a which extend all around the belt loop 10. In the illustrated system, there are five
such lines 56
a in track 56. These lines are sensed by a measuring detector 58 mounted to the machine
frame just beyond roller 12. Detector 58 may be a grating type detector similar to
the one in U.S. Patent 3,584,015, whose contents are hereby incorporated by reference
herein, which receives an image corresponding to the track 56 pattern and which, therefore,
also has the structure of a grating. By means of suitable pickup elements, the position
of the grating-shaped image of track 56 relative to the grating-shaped detector 58
produces a signal from the detector that is indicative of the lateral position of
the belt relative to a reference position such as the machine centerline. The detector
output is accurate to less than 1 µm. The signal from detector 58 is applied to controller
15 and is used not only to minimize the lateral wanderings of the belt, but also,
as will be described, to control the printing on the substrates S by the printing
stations 16
a to 16
c so that those stations print in exact registration on the substrates S which, as
noted above, are pinned to the belt loop stretch 10
a.
[0039] To maintain the lateral position of the belt, the present system incorporates a unique
roller 12 which can grow in diameter at one end of the roller and shrink in diameter
at the other end, or vice versa to shift the belt 10 laterally. The system is able
to achieve a minute conical deformation of roller 12 which induces an immediate lateral
shift of the belt 10 as it moves around the semi-circumference of roller 12. The lateral
drift of the belt is continuously monitored and a servo-system adjusts the conicalness
of the roller 12 to maintain the belt at a desired position, e.g., the machine centerline.
[0040] Refer now to FIGS. 3 and 3A which show the roller 12 in greater detail. In FIG. 3,
only the left end segment of the roller is shown because the right end segment of
the roller is a mirror image of the left segment. Roller 12 comprises a cylindrical
central body 62 having shafts 64 projecting axially from opposite ends of that body.
A reduced diameter end 64
a of each shaft 64 is journalled in the machine frame 65. Also, a shaft segment 64
b just in board the machine frame is threaded. Slidably supported on each shaft 64
is an annular roller end member 66. Each member 66 has a base 66
a slidably received on the corresponding shaft 64 and which butts against the adjacent
end of body 62. Extending axially from base 66
a is an annular cylindrical section 66
b having a necked-down segment 66
c adjacent base 66
a. As best seen in FIG. 3A, section 66
b is slitted lengthwise to form a multiplicity of fingers, 68 each of which is free
to flex radially about an axis at segment 66
c. Each end member 66 has the same outside diameter as the roller body 52 and thus
forms a variable diameter extension thereof. The roller body 62 and end members 66
are covered by a sleeve 70 of a resilient material such as rubber.
[0041] As shown in FIG. 3, the inner wall 72 of end member section 66
b is tapered to form a conical surface whose radius decreases with the distance from
the end of the roller 12. Slidably positioned on each shaft 64 for engagement with
surface 72 is an annular wedge 74 having a conically shaped exterior surface 74
a whose cone angle corresponds to that of surface 72. Also, a spur gear 76 having a
threaded axial opening 78 is threaded onto each shaft segment 62
b between wedge 74 and the machine frame 65. Thus, when a gear 76 is rotated in one
direction, it will push the corresponding wedge 74 further into the adjacent end of
the roller 12. This action will cause the associated end member section 56
b to extend radially thereby increasing the diameter of the roller 12 at the corresponding
end of the roller. On the other hand, when the gear 76 is rotated in the opposite
direction, it exerts no force on its wedge 74 which is thereupon pushed outward toward
the corresponding end of the roller by a coil spring 82 compressed between each wedge
74 and the associated roller end member section 66
a. Resultantly, the diameter of that end of roller 12 will be reduced.
[0042] Each gear 76 may be rotated in one direction or the other on its shaft 64 by a meshing
gear 86 which rotates with the shaft 88
a of a synchronous pulsed reversible servo motor 88 mounted to the machine frame 65.
Each motor 88 may rotate its gear 76 faster or slower than roller 12 which will move
the corresponding wedge 74 in or out to adjust the conicalness of the corresponding
end of roller 12.
[0043] It should be understood that the end member 66
b is shaped and positioned on its base 66
a such that when the asscciated wedge 64 is retracted outward, the resilient roller
sleeve 70 will shrink so that the corresponding end of the roller 12 may have a smaller
diameter than the mid portion of the roller. Thus by appropriately positioning the
wedges 74 on shafts 64, the opposite end segments of the roller can each be controlled
to have a diameter which is smaller, equal to or greater than the diameter of the
middle segment of the roller. In other words, by propriately positioning the wedges
64 at the opposite ends of the roller, the conicalness of the roller as a whole may
be varied in one axial direction or the other.
[0044] In the illustrated system, the motors 88 that adjust the conicallness of roller 12
are controlled by a standard servo circuit in controller 15 (FIG. 1) in accordance
with the output signals from the detector 58 which monitors the lateral drift of belt
stretch 10
a. The servo tends to maintain the belt at a selected lateral position, e.g., the machine
centerline, within very close tolerances. As soon as a lateral shift of the belt is
detected by detector 58, a signal is applied to controller 15 which controls one or
both of the motors 88 to move the wedges 74 in or out to adjust the conicallness of
roller 12 by just the required amount to return the belt to its center position.
[0045] While the motion of belt 10 is closely controlled to minimize lateral movement of
the belt as just described, provision is also made in the present system for compensating
for any residual movement of that belt that might occur due to belt irregularities
or small delays or perterbations in the belt position servo circuit.
[0046] As noted above, the printing stations 16
a to 16
c are all the same except that they print using different color inks, e.g., the subtractive
color inks cyan, magenta and yellow. Each printing station includes a print cylinder
92 disposed above belt stretch 10
a and an anvil cylinder 94 located parallel to cylinder 92 below belt stretch 10
a. All of the cylinders 92, 94 are rotatably supported by the machine frame parallel
to the belt rollers 12 and 14 such that the upper stretch 10
a of the belt loop 10 is in rolling contact with the cylinder couple at each print
station.
[0047] Each print station also includes a print head 96 supported very close to the cylindrical
surface of cylinder 92 by a lead screw 98 rotatably mounted to the machine frame such
that it is parallel to the cylinders 92, 94. The lead screw 98 may be rotated in one
direction or the other by a reversible step motor 102 which receives drive signals
from controller 15.
[0048] The print head, print cylinder and printing controller may be of the types described
in my patent 4,792,860 (the contents of which are hereby incorporated by reference
herein.) or in my above-referenced patent application.
[0049] During the operation of the apparatus, in response to an incoming data stream, controller
15 issues print signals to the print heads 96 causing the print heads to write electronic
images on the associated print cylinders 92 corresponding to the primary color components
or separations of an original document or image, the images being written line by
line as the print cylinders 92 rotate. The image written on each print cylinder 92
is developed by applying electrostatic thermoplastic ink to the surface of the cylinder
from an ink source 106 at an inking station. As described in my patent and parent
application, the ink adheres only to the surface areas of the cylinder 92 that were
charged by the print head 96. When the inked portions of a rotating cylinder 92 encounter
a substrate S passing through the corresponding inking station, the ink is transferred
to that substrate. As in most presses, the position of the image written on each print
cylinder 92 is coordinated with the position of the substrate S on the substrate carrier
such that the image printed on the substrate is located at the correct position on
the substrate.
[0050] Still referring to FIG. 1, when printing using an electronic print head 96 like the
ones described in my prior application, the print head is invariably stationary. In
accordance with this invention, however, the print head is movable laterally on lead
screw 98 to account for any residual lateral drift of the belt loop 10 that may occur
due to any lead or lag in the servo circuit controlling belt position. More particularly,
the output signal from the detector 58 together with the signal from a second similar
detector 58
a both of which monitor belt position are used to shift each print head 96 to compensate
for any such drift. When the belt loop 10 drifts from a selected reference position,
e.g., the machine centerline, the controller 15, which receives the output signals
from detectors 58 and 58
a calculates the vector movement of the belt 10 in the direction of travel and applies
appropriate drive signals to the step motors 102 which rotate the lead screws 98.
Rotations of the lead screws shift the positions of the corresponding print heads
96 laterally so that the electronic image dots being written on the print cylinders
92 are repositioned laterally to compensate for the belt drift. At the same time,
the timings of the writings by print head 96 of the image dots on the cylinders 92
are adjusted to compensate for any speed variations of the belt loop 10 as detected
by the clock track detector 54.
[0051] During operation of the apparatus, successive substrates S are fed to the upper belt
stretch 10
a at the entrance end of belt loop 10 to which they firmly adhere due to the high friction
film 38 on the belt and the electrostatic hold down grid 32. The controller 15 coordinates
the feeding of each substrate onto the belt loop with the printing operations being
carried out at the printing stations 16
a to 16
c so that the images are centered properly on the substrate. As the substrate approaches
the first printing station 16
a, controller 15 controls the print head 96 at station 16
a so that it writes an electronic image on the print cylinder 92 at that station which
image is inked by the cyan ink source 106 so that when the substrate S reaches the
printing station 16
a, the inked image will be transferred to the substrate as the substrate passes between
the cylinders 92 and 94 at that station. During this time, the controller 15 receives
signals from detectors 54, 58 and 58
a indicating the lengthwise position and lateral position of the belt stretch 10
a. Using this information, the controller determines if the image being written onto
the print cylinder 92 has to be shifted axially or circumferentially on the cylinder
in order to compensate for any belt position or speed changes. If the belt has drifted
laterally, the controller computes the amount of the drift and the longitudinal belt
position and delivers a drive signal to step motor 102 to shift the print head 96
in one direction or the other to compensate for that drift.
[0052] Similarly, if a belt speed change has been detected, the controller 15 controls the
timing of the writing operation carried out by the print head to adjust the circumferential
positions of the image dots on the print cylinder 92 to compensate for the belt speed
changes. Thus, as the substrate S passes through the first print station 16
a, a cyan image will be printed at the proper location on the substrate S despite unwanted
belt movements between the time that the substrate is deposited on the belt and the
time that the substrate is processed by the print station 16
a.
[0053] In like manner, as the substrate proceeds from print station 16
a to print station 16
b, the system continues to monitor the belt movements and to adjust the position and/or
timing of the print head 96 at the latter station so that by the time a particular
print dot or pixel on the substrate reaches the print station 16
b, the print head 96 at that station will have been adjusted position-wise and timing-wise
so that the print head writes the corresponding magenta image dot at the proper location
on the print cylinder 72 at station 16
b so that it will be superimposed on the cyan print dot on substrate S when that print
dot reaches the print station 16
b.
[0054] The drift of the belt as it wanders can be predicted because of the inherent periodicity
of the control by the servo system which adjusts the belt continuously as it travels.
Accordingly, each write head 96 which operates in conjunction with the associated
print cylinder 92 may be adjusted continuously in anticipation of the arrival of a
print dot so that the next dot will always be superimposed exactly onto the preceding
dot. The controller 15 calculates the speed of the belt, the distance of travel of
each print dot as well as the position of the dot being written on the print cylinder
so that the two can converge simultaneously at the correct location on the substrate.
In other words, the writing heads are in continuous microscopic motion shifting laterally
as they deposit their signals on the respective print cylinders in accordance with
the calculations from the controller.
[0055] For example, if belt stretch 10
a should drift to the left as it is transporting the substrate S from print station
16
a to station 16
b, its drift would be detected by detector 58 and passed on to controller 15. The controller
which knows the position of the belt stretch 10
a from the signals provided by detectors 54, 58 and 58
a will compute the amount by which the print head 96 at the printing station 16
b has to be moved leftward in order to write a corresponding magenta image dot I
m on cylinder 92 which will be superimposed on the print dot P
c that was printed on the substrate at station 16
a. In other words, without such correction, the print station 16
b would write an image dot I'
m on cylinder 92 which would print to the right of the print dot P
c on substrate S. With my invention however, the print head 96 is shifted to the left
by the same amount as the belt drift so that the image dot I
m which corresponds with the print dot P
c will be superimposed on the latter dot.
[0056] This process continues as the substrate is transported through each print station
of the press so that when the substrate leaves the press, it carries a 3-color print
with all of the print dots being in proper registration on the substrate.
[0057] By employing this principle of "predictive positioning", the electrostatic transport
of this invention greatly exceeds, in the area of color printing, the presently attainable
accuracies of print registration which are typically only in the order of ± 100 µm.
[0058] The belt-type transport described above with an electrostatic hold down grid, can
also be used to facilitate printing on both sides of a substrate. For this, two such
transports can be arranged in series as shown in FIG. 4 such that the upper stretch
of one belt loop lies in the same plane as the lower stretch of the other belt loop.
A substrate S deposited on the belt loop 10 of the left hand transport may be conveyed
by that belt loop through a first press which prints on the upper side of the substrate
as described above. At the end of that belt loop, this substrate will be handed off
to the right hand transport whose belt loop 10' carries an electrostatic hold down
grid similar to grid 32 in FIGS. 1 and 2. In the latter transport, however, the grid
is activated in the zone at the underside of the belt loop so that the substrate will
be suspended from the lower stretch of that belt loop and carried past a second press
which can print on the other side of the substrate. At the exit end of the right hand
transport, the substrate may be handed off to a suitable inclined tray T.
[0059] Of course, a switchable electrostatic hold down grid may also be incorporated into
the cylindrical surface of a paper drum or cylinder in order to pick up and let off
a substrate from the drum or cylinder in the same manner described above in connection
with belt loop 10.
[0060] Refer now to FIG. 5 which illustrates a reciprocating or moving floor-type transport
incorporating my electrostatic hold-down grid. This transport includes a pair of spaced
apart, parallel, stationary side plates 116
a and 116
b which incorporate electrostatic hold-down grids 118
a and 118
b. Slidably positioned between the side plates 116
a and 116
b is a reciprocatable plate 122 which also carries an electrostatic hold-down grid
124. Plate 122 is reciprocated back and forth parallel to plates 116
a and 116
b by a linear actuator 126 whose armature is 126
a is connected to one end of plate 122. The stationary hold-down grids 118
a and 118
b are electrically connected in parallel to a voltage source v₁ by way of one terminal
of a double throw switch 128. The other terminal of switch 128 connects the grid 124
on the movable plate 122 to that same voltage source. The actuator 126 is connected
to a second voltage source v₂ by way of a second switch 129, the positions of both
switches 128 and 129 being controlled by a relay coil 130.
[0061] When the actuator 126 is energized, its armature advances plate 122 toward the right
and when the actuator is de-energized, an internal spring biases (not shown) the armature
126a and plate 122 to a retracted home position. It is apparent from FIG. 5 that when
the relay 130 is energized, say, by a control signal from controller 15 (FIG. 1),
switch 129 closes thereby energizing the actuator and causing plate 122 to move rightward
to its advanced position. At the same time, the relay 130 actuates the switch 128
so that it connects the hold-down grid 124 on the moving plate 122 to the voltage
source V₁ and disconnects the hold-down grids 118
a and 118
b on plates 116
a and 116
b from that voltage source. Therefore, a substrate S positioned on the transport is
adhered to the moving plate 122 and is caused to advance with that plate.
[0062] On the other hand, when relay 130 is de-energized, switch 129 opens thereby de-energizing
the actuators so that plate 122 moves leftward toward its retracted or home position.
At the same time, relay 130 moves switch 128 to its other position so that it disconnects
the hold-down grid 129 from the voltage source V₁ and connects the grids 118
a and 118
b to that voltage source. Thus, as plate 122 retracts, the substrate S is released
from plate 122 and pinned to plates 116
a and 116
b so that it stays in its advanced position. Subsequent reciprocations of the movable
plate 122 coupled with the 180° out-of-phase switching on and off of the movable and
stationary hold-down grids continue to advance the substrate S toward the right in
FIG. 5. Of course, a reciprocating-type transport that moves over much smaller distances
can be envisioned which uses piezoelectric vibrators or benders to move the movable
member(s) of the transport.
[0063] It will be seen from the foregoing that my transport system enables the routing and
positioning of documents and other articles with a high degree of accuracy. Therefore,
the system should find wide application wherever there is a need to perform a succession
of operations at particular locations on planar articles of one kind or another.
[0064] It will thus be seen that the objects set forth above, among those made apparent
from the preceding description, are efficiently attained and, since certain changes
may be made in the above constructions without departing from the scope of the invention,
it is intended that all matter contained in the above description or shown in the
accompanying drawings shall be interpreted as illustrative and not in a limiting sense.
[0065] It will also be understood that the following claims are intended to cover all of
the generic and specific features of the invention described herein.
1. A transport system comprising
a carrier having a surface;
an array of first conductors extending under said surface generally parallel to
one another;
an array of second conductors extending under said surface generally parallel to
said first conductors, each second conductor being spaced close to a first conductor
to define a narrow gap between them;
means for applying an electrical potential difference between said first and second
conductors to produce electrostatic fields at said gaps which can attract and hold
a substrate to said carrier surface, and
control means for controlling said potential difference applying means so that
a potential difference is applied only between selected ones of said first and second
conductors so as to control the areas of said carrier surface to which the substrate
is held.
2. The transport system defined in claim 1 wherein said carrier is a flexible belt.
3. The transport system defined in claim 1 wherein said carrier is a rotary cylinder.
4. The transport system defined in claim 1 wherein
said carrier comprises first and second members which are movable parallel to one
another generally in a common plane and means for moving said members relatively;
said first and second members each carry said first and second conductors arrays,
and
said control means controls so that a potential difference is applied between the
first and second electrodes of one of the members when the two members are moving
relatively in one direction and between the first and second electrodes of the other
member when the two members are moving relatively in the opposite direction.
5. The transport system defined in claim 1 wherein the control means include
a switch in circuit between said potential difference applying means and each
of the conductors in at least one of the arrays, and
actuating means for selectively actuating the switches.
6. The transport system defined in claim 5 wherein said actuating means are located at
one or more fixed zones along the path of said carrier opposite the switches thereon,
said switches being actuated when the carrier is moved to position them within a said
zone.
7. A transport system comprising
a support;
a pair of spaced-apart rollers rotatably mounted to the support parallel to one
another;
a belt loop engaged around and stretched between said rollers to form an upper
belt stretch and a lower belt stretch, said belt loop having an outer surface;
means for rotating at least one of aaid rollers so that the upper belt stretch
moves in a selected longitudinal direction;
an electrostatic hold down grid incorporated into said belt loop, said grid including
first and second arrays of electrodes, and
a voltage source for applying an electrical potential difference between the first
and second electrode arrays to produce electrostatic fields emanating from said belt
loop outer surface which are sufficiently strong to attract and hold a substrate introduced
to the belt loop outer surface.
8. The transport system defined in claim 7 wherein the strength of the electrostatic
fields produced at the belt loop is related to the weight and stiffness of the substrate
introduced to the belt loop outer surface such that the substrate will be discharged
from, rather than being carried around, the exit end of the belt loop.
9. The transport system defined in claim 7 and further including means for electrically
isolating from said voltage source selected electrodes in said first and/or second
electrode arrays so that only selected segments of said belt loop attract and hold
a substrate.
10. The transport system defined in claim 9 wherein said isolating means include
a switch connected between said voltage source and each electrode of at least one
of the electrode arrays, and
means for opening said switches when the switches are located at selected stations
along the belt loop path.
11. The transport system defined in claim 10 wherein said switches are photosensitive
switches which open when deprived of light at said stations.
12. The transport system defined in claim 7 and further including a high friction coating
on the outer surface of said belt loop.
13. The transport system defined in claim 12 wherein said coating is neoprene or silicone
rubber.
14. The transport system defined in claim 7 and further including
a second pair of rollers similar to the first pair;
a second belt loop similar to the first belt loop and engaged around said second
pair of rollers, and
means for positioning the pairs of rollers relatively in series so that the upper
stretch of one belt loop is located in substantially the same plane as the lower stretch
of the other belt loop so that a substrate supported on the one belt loop with one
side exposed may be handled off to the other belt loop so that its other side is exposed.
15. The transport system defined in claim 7 and further including
monitoring means for monitoring the lateral position of said belt loop with respect
to a selected position and producing an output signal indicative thereof;
shift means for shifting the belt loop laterally in response to a control signal,
and
servo means responsive to said output signal for delivering a control signal to
said shift means so that the shift means tends to maintain the belt loop at said selected
position.
16. The transport system defined in claim 15 wherein
said monitoring means include belt position indicia on the belt loop, and
a detector positioned adjacent to said belt loop for detecting said indicia and
producing said output signal indicative thereof.
17. The transport system defined in claim 16 wherein
said indicia comprise a plurality of closed spaced parallel lines extending longitudinally
on the belt loop, and
said detector is an optical grating-type detector that produces an interference
pattern with said lines.
18. The transport system defined in claim 16 and further including
a print head for writing images on a substrate held to said belt loop outer surface;
positioning means for movably positioning the print head opposite said belt loop
outer surface;
moving means responsive to a head control signal for moving said print head in
a lateral direction perpendicular to said selected direction, and
second servo means responsive to said output signal for delivering a head control
signal to said moving means so as to shift the print head in said lateral direction
to compensate for any lateral movement of the belt loop from said selected position.
19. The transport system defined in claim 18 and further including
timing marks inscribed along said belt loop;
a sensor for sensing said timing marks and producing a timing signal in response
thereto, and
print control means responsive to said timing signal for advancing or retarding
the writing by the print head to compensate for any changes in the motion of the belt
loop in said selected direction.
20. The transport system defined in claim 19 wherein
said monitoring means also include a second detector positioned opposite to the
belt loop at a location spaced from the first detector for detecting the lateral position
of said indicia and producing a second output signal indicative thereof, and
said second servo means respond also to said second output signal to produce the
head control signal to said moving means.
21. The transporting system defined in claim 15 wherein the shift means include means
for changing the conicalness of one of said rollers.
22. The transport system defined in claim 21 wherein said one of said rollers includes
a cylindrical central body;
a pair of variable diameter extension members at the opposite ends of said central
body;
a resilient cylindrical sleeve encircling said central body and said extension
members, and
means for changing he diameters of said extension members in response to said control
signal.
23. A transport system comprising
a support;
a pair of spaced-apart rollers rotatably mounted to the support parallel to one
another;
a belt loop engaged around and stretched between said rollers to form an upper
belt stretch and a lower belt stretch and having an outer surface;
means for rotating at least one of said rollers so that the upper belt stretch
moves in a selected longitudinal direction;
means for monitoring the lateral position of the belt loop with respect to a selected
position and producing an output signal indicative thereof;
a print head for writing images on a substrate held to said belt loop outer surface;
positioning means for movably positioning the print head opposite said belt loop
outer surface;
moving means reponsive to a head control signal for moving said print head in a
lateral direction perpendicular to said selected longitudinal direction, and
servo means responsive to said output signal for delivering a head control signal
to said moving means so as to shift the print head in said lateral direction to compensate
for any lateral movement of the belt loop from said selected position.
24. The transport system defined in claim 23 and further including
timing marks inscribed along said belt loop;
a sensor for sensing said timing marks and producing a timing signal in response
thereto, and
print control means responsive to said timing signal for advancing or retarding
the writing by the print head to compensate for any changes in the motion of the belt
loop in said selected direction.
25. The transport system defined in claim 24 wherein
said monitoring means also include belt positioning indicia on the belt and a pair
of detectors positioned opposite the belt loop at spaced-apart locations for detecting
the lateral position of said indicia at said locations and producing said output signal
and a second output signal indicative thereof, and
said second servo means responds also to said output signal and said second output
signal to provide the head control signal to said moving means.
26. A transport system comprising
a conveyor for conveying an article;
means for moving the conveyor in a selected longitudinal direction;
means for fixing the position of the article on the conveyor;
first and second spaced-apart work stations positioned opposite said conveyor,
each station including article processing means
moving means responsive to control signals for moving the article processing means
in a lateral direction perpendicular to said selected longitudinal direction;
detector means for monitoring the lateral position of said conveyor relative to
a selected fixed position and producing an output signal in response thereto, and
servo means responsive to said output signal for delivering control signals to
said moving means so as to shift the article processing means at said first and second
work stations to compensate for any lateral movements of the conveyor from said selected
position after said article is fixed to the conveyor.
27. The transport system defined in claim 26 and further including
a longitudinal series of timing marks inscribed on said conveyor;
sensing means for sensing said timing marks and producing a timing signal in response
thereto, and
control means responsive to said timing signal for advancing or retarding the operation
of said article processing means to compensate for any changes in the conveyor motion
in said longitudinal direction after said article is fixed to the conveyor.
28. The transport system defined in claim 26 wherein
said monitoring means also include second detector means positioned opposite to
the conveyor at a location spaced from the first said detector means for detecting
the lateral position of said conveyor relative to said fixed position and producing
a second output signal indicative thereof, and
said second servo means responds also to said second output signal to provide said
control signals to said moving means.