This application claims the priority of German Patent Document No. 10 2006 029 088.7, filed Jun. 24, 2006, the disclosure of which is expressly incorporated by reference herein.
The invention relates to a method for the printing of a print fabric.
In form based printing machines preferably operating according to the offset printing principle such as for example in web-fed rotary printing presses and in sheet-fed printing presses inkjet printing devices without form are increasingly used which more preferably serve for the individualization of printing products produced via offset printing with, for example, bar codes, numbering or other markings. Such inkjet printing devices have at least one inkjet printing head which can be designed according to the so-called continuous inkjet principle, the drop-on-demand inkjet principle, the thermal inkjet principle, the bubble inkjet principle or any other inkjet principle. The inkjet printing heads usually have a nozzle row of several nozzles arranged next to one another by way of which the printing ink can be directed at a print fabric to be printed.
Since the maximum printing speed of inkjet printing devices is significantly lower than the maximum printing speed of offset printing devices, in-line printing of a print fabric according to offset printing and according to inkjet printing poses difficulties. To increase the printing speed of inkjet printing devices that can be achieved it is already known from practice to use inkjet printing devices with a multiplicity of inkjet printing heads, namely on the one hand with several inkjet printing heads across the transport direction of the print fabric or the print direction and on the other hand with several inkjet printing heads in transport direction of the print fabric or in printing direction, wherein the multiplicity of inkjet printing heads are arranged next to one another array-like or matrix-like.
The number of inkjet printing heads required across the printing direction is primarily defined by the desired print resolution relative to the given print resolution of the inkjet printing head used and by the desired overall printing width relative to the given printing width of an inkjet printing head. The required number of inkjet printing heads in printing direction is primarily determined by two points, namely firstly in that the desired printing speed is greater than the given printing speed of an inkjet printing head and on the other hand in that several printing inks are to be applied to a print fabric via the inkjet printing device.
Independent of whether an inkjet printing device with several inkjet printing heads arranged array-like or a single inkjet printing head for printing of a print fabric is used, the printing speed that can be achieved can also be increased in that the, or each, inkjet printing head of an inkjet printing device is obliquely aligned or inclined to the transport direction of the print fabric and thus to the printing direction. The inclination results in that the effective distance of the nozzles across the printing direction or transport direction of the print material is reduced and the print resolution across the printing direction can thus be increased. If the printing speed remains unchanged it is then possible to print with a higher area coverage or optical density. Likewise it is also possible to keep the area coverage or optical density constant while increasing the printing speed.
If, to increase the print resolution and/or to increase the printing speed on inkjet printing devices, work is performed with inkjet printing heads inclined to the printing direction or the transport direction of the print fabric, the output data for an image to be printed with the inkjet printing device provided in a preliminary stage of printing has to be converted according to the given geometrical conditions.
With printing methods known from practice this conversion is carried out in the hardware of the inkjet printing heads which however has the disadvantage that this conversion is valid only for a defined inclination, only for a defined drop frequency and only for a defined printing speed. If for instance the printing speed should change it is not possible to react to this as a result of which distortions ultimately impairing the print quality are obtained for the print image to be printed.
Based on this the present invention is based on the problem of creating a new type of method for printing a print fabric. According to the invention, output data more preferably an output data matrix of a print image to be printed with the inkjet printing device is converted into target data, more preferably a target data matrix for controlling the inkjet printing device in real time dependent on a current printing speed, dependent on a current drop frequency of the, or each, inkjet printing head of the inkjet printing device and dependent on a current inclination angle of the, or each, nozzle row of the, or each, inkjet printing head relative to the transport direction of the print fabric prior to transmitting data to the inkjet printing device.
In terms of the method according to the invention it is provided to perform the conversion of the output data to the target data for controlling an inkjet printing device inclined in printing direction independent of the hardware of the inkjet printing heads of the inkjet printing device. The conversion of the output data to the target data according to the invention accordingly takes place prior to the transmission of image information from the preliminary printing stage to the inkjet printing device and thus between the preliminary printing stage and the inkjet printing device. The conversion of the output data to the target data according to the invention takes place in real time wherein the current printing speed, the current drop frequency and the current inclination angle are variable quantities in the conversion of the output data to the target data.
Because of this, the conversion of the output data to the target data can for example be adapted to a changing printing speed so that a high print quality can be guaranteed with the inkjet printing device even with changing printing speeds.
According to a first advantageous further development of the invention the conversion of the output data to the target data is performed by way of a transformation such that an output data matrix is scaled and sheared in printing direction and across the printing direction. A scaling factor for scaling the output data matrix across the printing direction is determined from the current inclination angle, namely from the ratio of the expansion of the print image across the printing direction with inclined inkjet printing device to the expansion of the print image across the printing direction with non-inclined inkjet printing device. A scaling factor for scaling the output data matrix in printing direction is determined from the current printing speed and the current drop frequency. A shear angle for shearing the output data matrix is determined from the current inclination angle.
According to a second alternative advantageous further development of the invention the conversion of the output data to the target data is carried out such that an output data matrix is scanned step-by-step dependent on the current inclination angle, the current printing speed and the current drop frequency wherein, then, when one or several nozzle positions of the inkjet printing device impinge on one pixel in an output data matrix, a corresponding pixel is set in a target data matrix.
Preferred further developments of the invention are obtained from the following description. Exemplary embodiments of the invention are explained in more detail by the drawings.
Before the method for the printing of a print fabric according to the invention is described in detail in the following, printing conditions on inkjet printing devices are first described making reference to
For printing a print fabric the print fabric to be printed is preferably moved in the direction of the arrow 13 relative to the preferably fixed inkjet printing head wherein for the case of a constant drop frequency of printing ink and a constant printing speed the screen of possible positions 14 for printing ink drops shown in
In
From the relationships described making reference to
Owing to the inkjet printing heads or nozzle rows of the printing heads being inclined relative to the transport direction of the print fabric and thus the printing direction it is necessary to convert output data of a print image to be printed with the inkjet printing device provided in a preliminary printing stage to target data for controlling the inkjet printing device. In terms of the invention present here this takes place prior to the transmission of data to the inkjet printing device immediately after the provision of the output data in the preliminary printing stage wherein this conversion is dependent on a current printing speed of the printing method based on the form and thus the inkjet printing method, dependent on a current drop frequency of the, or each, inkjet printing head of the inkjet printing device and dependent on a current inclination angle of the, or each, nozzle row of the, or each, inkjet printing head relative to the transport direction and thus the printing direction.
Conversion of the output data to the target data takes place in real time so that during printing with for instance changing printing speed the target data for controlling the inkjet printing device can be changed in order to provide an always optimum print image with the inkjet printing device with changing printing conditions. The current printing speed, the current drop frequency and the current inclination angle are thus variable quantities in the conversion of the output data of the preliminary printing stage to the target data for controlling the inkjet printing device.
As already mentioned, the inclination angle of the, or each, nozzle row of the, or each, inkjet printing head of the inkjet printing device is a variable quantity of the method according to the invention wherein the inclination angle however can be ideally selected so that with a given maximum printing speed and a given maximum drop frequency a geometrical area coverage or optical density of 100% is just provided. Then the maximum printing speed is only limited through physical parameters such as for example the drop frequency itself as well as the placing accuracy of the printing ink drops on the print fabric connected with this. The inclination angle however can be selected so that area coverages of less than 100% are obtained.
The current drop frequency is either equal or variable for all nozzles of an inkjet printing head wherein when a continuous inkjet printing device is used the drop frequency for all nozzles is identical and wherein, if a drop-on-demand inkjet printing device is used, the drop frequency is variable.
The current printing speed is sensed by way of a measuring sensor and constitutes a variable input quantity for the conversion of the output data of the preliminary printing stage for the print image to be printed with the inkjet printing device to the target data for controlling the inkjet printing device.
To convert the output data to the target data according to a first version of the method according to the invention the procedure is to convert the output data via a transformation to the target data, namely such that output data present in form of an output data matrix, more preferably an output bitmap, is scaled and furthermore sheared in printing direction and across the printing direction to provide a target data matrix, more preferably a target bitmap for controlling the inkjet printing device. The detailed procedure with this transformation is explained in the following making reference to
In
In
Expressed in other words the scaling factor for the scaling across the printing direction is obtained from the ratio of the expansion of the print image across the printing direction with inclined inkjet printing device to the expansion of the print image across the printing direction with non-inclined inkjet printing device. In
In the exemplary embodiment of
In
To compensate the time delay differences of the printing ink the preferable procedure is that the output data of the print image to be printed is adapted such that such print image information which is assigned to nozzles with a larger distance from the print fabric to be printed compared with such print image information which is assigned to nozzles with a smaller distance from the print fabric to be printed is displaced to an earlier position in printing direction.
A second version of the method according to the invention for converting the output data of the preliminary printing stage to the target data for controlling the inkjet printing device is described in the following making reference to FIGS. 6 to 8, wherein this conversion of the output data to the target data is performed according to the second version in that an output data matrix dependent on the current inclination angle, the current printing speed and the current drop frequency is scanned step-by-step wherein then, when one or several nozzle positions of the inkjet printing device impinge on one pixel in the output data matrix, a corresponding pixel is set in the target data matrix.
This output data matrix 24 of the
In
The setting of the pixels in the target data matrix can take place in a binary way or via grey value modulation. Then, when the inkjet printing device uses inkjet printing heads that operate in a binary manner, pixels which all have the same drop size are set or not set in the target data matrix, specifically dependent on whether during the scanning nozzle positions impinge on pixels in the output data matrix. If however an inkjet printing device is used whose inkjet printing heads can modulate grey values, at a time, when a nozzle position impinges on a pixel in the output data matrix, the grey value which comes closest to the ratio of the area coverage of a printing ink drop and the imaginary pixel area in this position is set in the target data matrix.
Even according to the second version of the present invention, the target data matrix generated using the method described making reference to FIGS. 6 to 8 can be converted or transformed for compensation of different distances of the nozzles from the print fabric to be printed as described making reference to
The conversion of output data to target data described above is carried out in real time so that a speed change of the printing speed can be taken into account in the inkjet printing device.
A side effect of the method described consists in that with lesser printing speed than the maximum printing speed a higher optical density can be achieved. Especially when printing black/white graphics or when printing texts this side effect has a positive effect on the print image quality. However, if this side effect is perceived as disruptive, the target data matrix can be deliberately thinned out by deleting pixels such that when several pixels are set in a position of the target data matrix, only the best placed pixels are selected in each case.
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The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.
Number | Date | Country | Kind |
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10 2006 029 088.7 | Jun 2006 | DE | national |