1. Field of the Disclosure
This disclosed device and method relates generally to a transfer station used in continuous web electrostatographic or xerographic printing systems.
2. Description of Related Art
The use of BTR (Biased Transfer Roll) foam rollers, disposed in contact with a portion of a photoreceptor, as well as transfer blades and dicorotrons, are often used in the prior art to pull an image from a PR belt or drum to paper. In continuous paper web feeding, however, a difficulty in printing onto a continuous web substrate is the fact that belt type photoreceptors typically have a belt seam. To avoid the seam on the belt, in the prior art, It has been necessary stop the web movement, reverse the web direction, and then reverse direction again to maintain synchronization of the PR belt and continuous web, as the seam passes through the transfer station. This movement of the large mass of the paper roll is a complex process that inhibits speed of operation of the printing system and poses unnecessary risk of web malfunctions.
It is known, as disclosed in U.S. Pat. No. 5,970,304, buffers and dancer rolls are known for the buffering of web speed variations and also the separation of the web from the nip to adjust the relationship of the photoreceptor belt and web for facilitating the transfer of images from the belt to the web. Also, current designs generally require the continuous web to separate, stop, back up, and reverse again and remerge with the PR belt in order to skip the seam on the
Thus, in accordance to the present disclosure, a system is provided that avoids any stopping or reversing of the web direction in a continuous feed printer, instead maintaining more consistent process speed. The only requirement is a moderate slowing and speeding up of the web, in order to cycle through the PR belt seam. This is done by forming an adjustable loop in the continuous web and then immediately flattening the loop after passage of the seam through the transfer zone. The transfer zone includes two transfer BTR rolls with selective transfer operations. Two vacuum assist rolls control the formation and size of the web loop. These advantages allow a relatively simple operation to cycle through the PR belt seam.
According to the embodiments, the present disclosure provides continuous, uninterrupted images on media, for example, labels, while skipping the photoreceptor belt seam. Thus, there is provided a continuous paper web feed system with a pair of alternating biased transfer roll transfer zones. To compensate for occurrences such as the seam on the PR belt, according to this disclosure, the web continuously moves forward, without reversing, to allow for a seam to pass. In particular, a changing web loop, between the biased transfer rolls, is able to grow and shrink in every cycle of the PR belt. The selective activation of the biased transfer rolls, along with the changing web loop, permits continual movement of the web in the forward direction and the synchronization of the images on the belt with the web.
Various of the above-mentioned and 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 embodiment(s), including the drawing figures wherein:
In accordance with the disclosure, there is provided a system that avoids any stopping or reversing of the continuous web direction. Instead, a consistent process speed is maintained, only requiring a slowing and speeding up of the web to cycle through the PR belt seam. This is done by forming and then flattening a web loop, using a pair of vacuum assist rolls, during the passage of the seam through the transfer zone. The transfer zone includes two transfer BTR rolls with both alternating transfer operations and simultaneous transfer operations.
With reference to
In
It should be noted that the loop 32 is formed and collapsed during a full PR belt 10 cycle of the seam 14 of the PR belt 10. This allows for the seam to pass, yet maintain tight image transfer at BTR 1 and BTR 2 and synchronization of the images on belt 10 with the movement of web 20. The size of the loop is selective and can be adjusted depending upon the printing system configuration.
It should be noted that prior transfer systems required the stopping to the web, reversing direction of the web, to back up the web, and restarting again the movement of the web 20 in the original direction. All of this movement was necessary in the prior art, in order to synchronize the transfer operation with respect to the web movement in relation to the belt movement, in order to account for the seam of PR belt.
In accordance with the present disclosure, there is no reversal of direction for seam accommodation, merely the formation of a loop in the web each time the seam passes as illustrated in the figures.
Still with reference to
With reference to
Once the first image after seam 14 is transferred at the transfer zone of BTR 2, the control slows down rolls 16 and 18 and BTR 1 starts to straighten the web 20. Preferably, there should be about 1.5 seconds to accomplish this move. The web 20 needs to be flat as shown in
With reference to
In
It should be understood that the above disclosure for the handling of a web seam is merely exemplary of different situations such as avoiding test patches and different formats for label printing and the disclosure is intended to cover a wide range of applications dealing with continuous web printing and adjustment for situations requiring a deviation from routine operation.
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.