Color printer with a controller and a printing station for each color
10551769 ยท 2020-02-04
Assignee
Inventors
Cpc classification
G03G15/1615
PHYSICS
G03G15/5054
PHYSICS
International classification
Abstract
A color printing unit includes one printing station for each color along with one anode roller. A continuous transfer belt is guided over a deflection roller and a control roller. One or more sensors measure a property of reference markings printed on the transfer belt. A control device for controlling and adjusting the transfer belt acts on the control roller through an actuating motor as a function of the detected properties of the reference markings. The one or more sensors are arranged in the area of the control roller for the transfer belt, by which an additional tension roller saves costs and space. During the measurement, at least for the period in which the printed reference markings pass under the one or more sensors, relative movements between the one or more sensors and the control roller are ruled out.
Claims
1. A color printing unit, comprising: one printing station for each color; one anode roller per printing station; a continuous transfer belt covering the anode rollers and guided over a deflection roller and a control roller; one or more sensors for measuring properties of reference markings printed on the transfer belt; and a control device for controlling and adjusting straight travel of the transfer belt by an actuating motor acting on the control roller as a function of the measured properties of the reference markings, wherein the one or more sensors are arranged in an area of the control roller for the transfer belt, wherein the control roller can be deflected in an X and Y direction via the actuating motor, and wherein, during the measurement, at least for a period during which the printed reference markings pass under the one or more sensors, relative movements between the one or more sensors and the control roller are ruled out.
2. The color printing unit according to claim 1, wherein the one or more sensors for measuring properties measure a density and/or a position of the reference markings printed on the transfer belt.
3. The color printing unit according to claim 1, wherein the control device is designed in such a manner that any deflection of the control roller is avoided during the period in which the printed reference marks pass under the one or more sensors.
4. The color printing unit according to claim 1, wherein the one or more sensors are mounted on a bar that follows the movements of the control roller.
5. The color printing unit according to claim 4, wherein the bar is attached to carriers or bearings of the control roller.
6. The color printing unit according to claim 1, wherein the one or more sensors are a contact image sensor.
7. The color printing unit according to claim 1, wherein the control roller connected to the control device is deflected in the X and Y direction by the actuating motor in such a manner that the transfer belt always runs in the center.
8. The color printing unit according to claim 1, wherein the one or more sensors are arranged above the control roller and the transfer belt.
9. The color printing unit according to claim 1, wherein the control roller also functions as a tension roller.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is explained in more detail below using the examples shown in the drawing.
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) Between the photo conductor drum 2 and a transfer or anode roller 4, a continuous transfer belt 5 (ITBintermediate transfer belt) is fed to a control roller 6 for the transfer belt 5. The transfer belt 5 shown in broken form in the diagram is moved in running direction 7 according to the arrow. The control roller 6 is deflected in the X and Y direction with a suitable closed loop control by means of an actuating motor 8, so that the transfer belt 5 always runs in the center and is tensioned when necessary.
(7) By means of an actuating motor 9 for the anode roller 4, it can be brought into its resting position in order to minimize wear, if it is not required in the current printing process.
(8) The surface of the photo conductor drum 2 is electrostatically negatively charged by the charging unit. The charge on the photo conductor drum 2 is now erased by exposure according to the information of the image or picture to be printed by means of the exposure unit at the points at which the toner is to be applied to the photo conductor drum 2 by making the photo conductor drum 2 conductive at the exposed points and accordingly losing its charge. From the developer unit, the negatively charged toner is transferred from a mixing unit via a toner transfer roller to the more positively charged points of the photo conductor drum 2 that have been neutralized by exposure.
(9) The points of the photo conductor drum 2 exposed with the toner are turned further up to the anode roller 4 and the transfer belt 5, where the negatively charged toner of the photo conductor drum 2 is attracted by the anode roller 4 and adheres to the transfer belt 5 located in between. The transfer belt 5 then transports the toner image in the known manner to the medium to be printed in a transfer station.
(10) As the photo conductor drum 2 continues to rotate, the discharge device is used to even out the charge on the photo conductor drum 2 and the cleaning device then removes any residual toner from the photo conductor drum 2.
(11) According to the invention, one or more sensors (10) are arranged above the control roller 6 and the transfer belt 5, which scan the transfer belt 5. The one or more sensors can be, for example, one optical sensor, three optical sensors assigned to the three areas 11 to 13, or one contact image sensor (CIS). Such one or more sensors (10), in particular the contact image sensor, are used to measure the density and/or position of reference marks printed on the transfer belt 5. The detected measured values can be used to determine various parameters such as stitching, register, i.e. the positional accuracy of the partial color prints on the printed product in relation to each other and the alignment of the stations.
(12) For each of its colors, for example according to the CMYK color model, a color printer or color copier includes such a printing station 1c to 1k as described on the basis of
(13) The arrow again points in the running direction 7 of the transfer belt 5, such that it can be seen that the print area 11 arrives at the printing stations 1c to 1k one after each other. Thereby, the printing stations 1c to 1k can print their respective color image on top of each other on the print area 11, creating a latent color toner image on the transfer belt 5 that can be transferred to a color print image on the media to be printed. Such printing stations 1c to 1k must be matched to each other with regard to an optimum print image, for example with regard to the printing that is perfect in register of the individual printing stations 1c to 1k, line thickness, area coverage, colors and print image of the individual units. This is done by calibrating the individual components such as printing stations 1c to 1k and transfer belt 5 using a machine controller described in
(14)
(15) The actuating motor 8 responsible for adjusting the control roller 6 in the X and Y direction is connected to the control device 14, so that the transfer belt 5 runs straight and in the center. By adjusting the control roller 6 in the X and Y direction, the actuating motor 8 has a direct influence on the drift of the transfer belt 5.
(16) An initial sensor 15 can be assigned to this actuating motor 8. During its initialization phase, the actuating motor 8 moves with its switch flag up to the switching point of the initial sensor 15, since the motor position is not present as an absolute value. From this point on, the position is calculated and stored repeatedly depending on the travel distance. The initial sensor 15 is a forked light barrier, the light beam of which is interrupted by the switch flag.
(17) If the transfer belt 5 drifts too much in one direction for any reason, an emergency stop should immediately bring the transfer belt 5 to a standstill. For this purpose, two reflex light barriers 16 are mounted under one side of the transfer belt 5. Normally, the transfer belt 5 runs between these two reflex light barriers 16. However, if transfer belt 5 runs out of such area, this is detected and causes transfer belt 5 to be switched off immediately. This mechanism can also be used to detect whether the transfer belt 5 is correctly inserted after a change.
(18) A control sensor 17 detects a white index strip 18 affixed on the transfer belt 5 and thereby calls up the function with the control algorithm in the control device 14. The reflex light barrier used as control sensor 17 is directed from above to the inner side of the transfer belt 5. However, the control sensor 17 is mounted at an angle to the transfer belt 5, so that only the index strip 18 reflects enough light and the control sensor 17 does not always switch by detecting the transfer belt 5.
(19) A belt sensor 19 detects the position of the transfer belt 5. The forked light barrier used for this purpose supplies an analog signal that is evaluated by the control device 14 for controlling the actuating motor 8. For the actual adjustment of transfer belt 5, a programmed digital PI controller is provided in control device 14. The adjustment function in the program is always called up once per cycle. The call up occurs if the control sensor 17 detects the index strip 18. This ensures that this always takes place at the same intervals, but also that the belt position is scanned at the same point. In order to determine the current actual value of the strip position, 50 scans are taken at the time of scanning and the mean value is calculated from such values.
(20) In addition to the actual control sensor system, the printer also has a gravitational sensor 20, which detects a possible tilted position of the large-format color printer. If such tilted position exceeds the control range of the transfer belt 5, the user is prompted to align the printer. Thereby, a monitor shows the user which stand has to be adjusted.
(21) The printer also has a temperature and humidity sensor that can be built into the control device 14. The measured values of such sensors are directly taken into account by the control algorithm.
(22) Other influences on the transfer belt 5 are detected and corrected directly by means of the forked light barrier.
(23) The control device 14 causes the printing of at least one predestined or fixed pattern by means of the printing stations 1c to 1k, preferably on at least one of the side areas 12 and 13 of the transfer belt 5. This pattern, which is then read out by the one or more sensors 10, is compared with predefined pattern images in the control device 14. Based on this evaluation, the individual components are controlled until the predestined pattern on the transfer belt 5 corresponds to the defined pattern image.
(24) The evaluation and adjustment are preferably carried out continuously, in particular by recording and taking into account changes in temperature and/or humidity.
(25) The control device 14 ensures, in particular, the printing that is perfect in register of the individual printing stations relative to each other, such that the lines printed by the printing stations 1c to 1k on the side areas 12 and 13 of the transfer belt 5 are located on top of each other. The control device 14 also adjusts the line thickness, area coverage, toner application, color calibration, color mixing, color homogeneity, scale setting, speed calibration, and straight run of the transfer belt 5.
(26) For example, the data detected by the contact image sensor 10 and acquired by the control device 14 can be used to influence the light intensity and/or exposure time of the print heads, the toner application of the respective printing station 1c to 1k, an adjustment of the high voltages for toner transfer via a power supply, the speeds of the drives and an alignment of the transfer belt 5 by means of the actuating motor 8.
(27) Such processes preferably can be carried out online during a print run. However, they can also be carried out at any time outside the printing process. In addition, larger patterns can be applied to the transfer belt 5 in the middle print area 11 between two print applications, where the print medium is otherwise described.
(28) At least one optical sensor 10 is arranged on the transfer belt, with the assistance of which the density and/or position of the reference marks printed on the transfer belt 5 is measured. Instead of an optical sensor, three individual sensors can be arranged in the middle of the transfer belt 5 and on the side areas 11 and 12. However, the contact image sensor can also scan the entire width of the transfer belt 5. In order to obtain accurate measured values, the sensor is arranged opposite a special tension roller in accordance with the state of the art. Such tension roller smoothes the transfer belt 5 at this point, such that errors in detection of the optical density, for example due to the ripples in the transfer belt, are avoided.
(29) With the color printing unit in accordance with the invention, such an additional tension roller is now spared, which results in significant advantages in terms of both costs and space requirements. As the sensor 10 is mounted in the area of the control roller 6 for the transfer belt 5, the expense can be minimized or avoided. The control roller 6 is directly deflected with a suitable adjusting by the control device 14, with the possibility of adjustment in the X and Y direction, such that the transfer belt 5 is always held in the center. However, such frequently occurring deflection of the control roller 6 would cause inaccuracies in the sensor data.
(30) However, the control device 14 is designed in such a manner to control the color printing unit such that the deflection and adjusting of the control roller 6 is prevented for the period in which the printed reference marks pass under the one or more sensors 10. In practical terms, this can be easily implemented, since the belt control can withstand short interruptions, such as 100 mm reference marks in the feed direction, without difficulty.
(31) So that the reference markings can be reliably detected by the one or more sensors, they must either be applied to the transfer belt 5 in a fixed cycle and the control device 14 synchronously interrupts the adjustment of the control roller 6. Or they are detected by a sensor arranged in front of the one or more sensors, which then transmits a signal to the control device 14 to interrupt the adjustment of the control roller 6. Such task can be performed, for example, by the control sensor 17.
(32) In a variant according to the invention, the sensors 10, for example the contact image sensor, are mounted on a bar that follows the movements of the control roller 6. Thus, it is essential that no relative movements occur between the one or more sensors 10 and the control roller 6 during the measurements.
LIST OF REFERENCE SIGNS
(33) 1. Printing station 2. Photo conductor drum (OPCorganic photo conductor drum) 3. Housing 4. Transfer or anode roller 5. Transfer belt (ITBintermediate transfer belt) 6. Control roller 7. Running direction 8. Actuating motor for the control roller 9. Actuating motor for the anode roller 10. One or more sensors 11. Useful or print area 12. Left-hand side 13. Right-hand side 14. Control device 15. Initial sensor 16. Reflex light barriers 17. Control sensor 18. Index strip 19. Belt sensor 20. Gravitational sensor