1. Field of the Technology
The present disclosure relates to digital printing systems having plural tandem marking or printing engines of the type with seamed photoreceptor (P/R) belts. In such printing systems, it is common practice to invert the sheet after marking on one side in a first printing engine and for feeding the inverted sheet into a second printing engine for marking on the opposite side of the sheet to thus facilitate high speed duplex digital printing. In printing systems having plural tandem engines using photoreceptor belts with seams, it is necessary to avoid imaging on belt seams. This requires some manner of skipping pitches in order to avoid placing images on belt seams. However, skipping pitches adversely affects printer efficiency.
2. Description of the Prior Art
A general manner of belt synchronization to avoid seams, showing the control of the belt speed of the marking devices to synchronize belts, is disclosed in U.S. No. Pat. 7,519,314 B2, assigned to the same assignee as the present invention. However, this technique is relatively inefficient in relation to the present disclosure. It is also shown in pending U.S. application Ser. No. 12/388,101, filed Feb. 18, 2009, now Publication No. 20100209161, by Ana P. Tooker et al, “Controlling Sheet Registration In A Digital Printing System”, assigned to the same assignee as the present invention, to control sheet registration in a printing system by varying the dwell time of a sheet in an inverter in a first marking device and changing various transport motor speeds to time the arrival of the sheet at a second marking device. However, there is no disclosure of the need to synchronize the belts for efficient avoidance of belt seams for the productivity of the printing process. With the speeds of the two PR's no longer synchronized, the seam zones of said PR's are no longer in phase. With no understanding of the relative position of the two seam zones to each other, skipped pitches may occur in a non-optimal manner impacting customer productivity. Seam synchronization is also shown in U.S. application Ser. No. 12/491,307, Publication No. 20100329742, now abandoned, assigned to the same assignee as the present invention, filed Jun. 25, 2009 by Andrew James Bonacci et al, “Controlling Sheet Synchronization in a Digital Printing System”; and U.S. Continuation-in-Part application Ser. No. 13/225,744, filed Sep. 06, 2011 of the same title, by the same inventor and assigned to the same assignee as the present invention. However, neither this application nor the prior art accounts for efficient spacing of images on PR's to adjust to different image sizes or print sheet sizes in the printing system.
This disclosure is a dynamic positional shifting, in the process direction, of the images on the second print engine, in a tandem machine printing system in order to increase the time (and number of prints) between skipped pitches. Although the PR's of each print engine may be out-of-phase, the relative positions of their individual seam zones may be derived during cycle-up. A control procedure then optimizes the position and spacing of each image within each PR revolution, while still maintaining the minimum inter-document zone (IDZ) length required for paper path feeding and registration, xerographic process controls, and finishing. Removing the constraints of fixed-dimension IDZ's, as well as being able to adjust spacing and length of individual images on the belt, allows for optimization of system productivity by either delaying or eliminating the need for a skipped pitch. Further features and advantages will be apparent to those skilled in the art from the specific apparatus and its operation or methods described in the example(s) below, and in the claims. Thus, they will be better understood from this description of these specific embodiments including the drawing figures wherein:
With reference to
The sheet stock is controlled to arrive at the registration point indicated by the arrow and denoted by reference numeral 35 in marking engine 30 at a controlled time. The second marking engine 30 includes a P/R belt 32 and has colorant generators 34 for forming a color image on the P/R belt 32. It should be understood that the belts 16 and 32 include seams and that imaging on the seams of either belt is to be avoided to insure image quality. The P/R belt 32 is operative to transfer the color image to the second side of a sheet at a transfer station indicated by reference numeral 33. The marking engine 30 also includes a post marking fuser 36. The sheet is then conveyed to a second inverter 38 which restores the sheet to its original orientation and discharges the duplex marked sheet to a finisher 40.
The system of
With reference to
The first dimension is the distance from the trail edge of the hole 102 in the belt to the lead edge of the seam zone 104 of the belt of engine 2 as shown at 106. This distance includes the length of the last image panel on the belt to the location of the belt hole. The belt hole is sensed by a not shown sensor to provide the control with a location status of the belt, specifically, the location of the belt seam at each revolution of the belt.
Another dimension for adjustment is the total seam scan zone length illustrated at 108. This is defined as the length of the seam itself 108A with a fixed margin of error, or seam tolerance 108B and 108C on each side of the seam length 108A, and an adjustable length portion or variable margin 108D. The adjustable length portion 108D can be altered in relation to the image panel 1 dimensions.
A third dimension for adjustment is the pitch number maximum length illustrated at 110. There is a maximum length for images on the belt to satisfy an overall need for a minimum IPZ (inter-document zone) distance to insure proper paper path feeding and registration, xerographic process control, and finishing operations in a digital printing system. Never the less, adjustment of the length of selected image pitches is possible within given tolerances. Finally, the IPZ or inter-document length itself, illustrated at 112 can be adjusted, also, within certain tolerances.
This disclosure provides for dynamically shifting the images in the process direction on print engine 2 in order to increase the time (and number of prints) between skipped pitches. The control 50, as shown, optimizes the position and spacing of each image within each revolution of the belt of engine 2. Rather than being restricted by fixed dimensions for the image panels and the inter-document zones relative to the seam zone for all pitch modes, the control of this disclosure allows for both variable sizes and starting positions, relative to the seam zone, of all image panels and inter-document zones. This is done without disregarding the necessary constraints dictated by the xerographic process.
With reference to
At this point in the printing process, the belts of engines 1 and 2 have been synchronized to coordinate the belt seams and the relationship of image panels of engines 1 and 2 with the belt seams of engines 1 and 2. Accordingly, the controller of block 52 processes the seam hole to seam zone dimension, the seam zone pitch dimension, the maximum image length by pitch number dimension, and the inter-document zone length dimension. The control then shifts the location of the image panels around the belt of engine 2 to meet the incoming sheets in engine 2 as illustrated in block 61.
Next, block 62 illustrates the step of registration of the sheet with the image to be transferred to the sheet. At this point, the relationship of the arrival of the sheet at the transfer station with respect to the arrival of the image on the belt must be within a ±30 millisecond tolerance. At block 64, there is an illustration of the arrival of the sheet at the engine 1 transfer station for transfer of the image to the first side of a given sheet. It should be noted that at this point, the control has positioned the photoreceptor belts of engines 1 and 2 in optimal position with respect to the image panels on the belts with respect to the belt seams.
At block 66, the sheet has been parked or temporarily delayed in the engine 1 sheet output inverter. Block 68 shows the step of ejecting the sheet from the output inverter for conveyance to engine 2 at the scheduled arrival time and block 70 illustrates the arrival of the sheet at the engine 2 entrance. In block 72, the sheet arrives at the engine 2 registration system and at block 74 the sheet is registered to the image on the engine 2 belt. As with engine 1, the sheet registration tolerance of engine 2 for receiving a belt image is preferably within plus or minus 30 milliseconds. At block 76, finally, there is illustrated the transfer of the image from belt 2 of engine 2 to the second side of the given sheet.
With reference to
While similar in function to existing systems for the minor correction of image drift, such systems are limited by close tolerances and do not change the size of the image panel or inter-document zones. In the present disclosure, the system is able to change the size of the image panel or IDZ's. Feedback from the PR Belt Controller can be used to understand the drift between the seams of the two PR Belts. This information can be used to shift the image positions on the next belt revolution so that the paper will continue to arrive at the second engine within the allocated time window for proper registration at transfer.
It should also be apparent that while specific embodiments of the present disclosure have been illustrated and described, it will be understood by those having ordinary skill in the art to which this invention pertains, that changes can be made to those embodiments without departing from the spirit and scope of the disclosure. Further, The claims, as originally presented and as they may be amended, encompass variations, alternatives, modifications, improvements, equivalents, and substantial equivalents of the embodiments and teachings disclosed herein, including those that are presently unforeseen or unappreciated, and that, for example, may arise from applicants/patentees and others. Unless specifically recited in a claim, steps or components of claims should not be implied or imported from the specification or any other claims as to any particular order, number, or position.
Number | Name | Date | Kind |
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7519314 | Carolan | Apr 2009 | B2 |
20060233569 | Furst et al. | Oct 2006 | A1 |
Number | Date | Country | |
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20110026950 A1 | Feb 2011 | US |