The invention relates to an apparatus for producing a printing form. The apparatus contains a holder for at least one printing form and at least one imaging module which can be moved relative to the printing form blank and which contains at least one radiation source. The radiation source, in order to produce image elements that accept printing ink, is aimed at a surface of the printing form blank and whose beam direction can be adjusted.
In order to produce the printing form, use is made of radiation sources, in particular lasers, whose beams are aimed at a radiation-sensitive layer on the printing form blank. When the radiation source is activated, an image point is produced or, in the negative process, a non-image point. The printing form blank can be fixed to a flat substrate, to the surface of a printing form cylinder or to the inner side of a hollow cylinder. In order to be able to cover the entire surface of the printing form blank, the radiation sources and the printing form blank are positioned relative to one another. In order to increase productivity, a plurality of radiation sources are used simultaneously.
In an apparatus shown in U.S. Pat. No. 5,717,451, four imaging heads are used, each of which contains a laser diode array. The imaging heads, together with the laser diode arrays, can in each case be positioned independently of one another in linear guides in a direction parallel to the axis of rotation of a printing form cylinder by a slide. While the printing form cylinder rotates, the imaging heads are positioned in the lateral direction, it being possible for a strip to be imaged by each imaging head. In order to avoid imaging errors, in particular connecting errors between two strips, the imaging heads are aligned exactly before imaging. In order to align the imaging heads, these are moved into a calibration position and the laser diodes are activated. The locations of the laser beams on a calibration surface are registered by a detector. If the beam direction of a laser diode array deviates from a predefined value, the relevant imaging head is pivoted in such a way that the deviations are corrected. Following pivoting, the position of an imaging head on a slide is fixed. The adjustment of the beam direction and the fixing of the imaging head have to be carried out accurately to a few microns and reproducibly. In order to implement this, extremely fine precision mechanical adjustments and highly accurate mountings are known. In an imaging configuration according to U.S. Pat. No. 5,367,323, the mount of a deflection mirror is mounted in an articulated manner by a sphere and tilted to a certain extent by two adjusting screws. Each adjusting screw has the effect of tilting about one axis in each case, the axes being at right angles to one another. U.S. Pat. No. 5,331,343 shows an imaging apparatus in which a lens configuration is accommodated in a v-shaped groove such that it can be rotated and displaced in the direction of the groove.
It is accordingly an object of the invention to provide an apparatus for producing a printing form that overcomes the above-mentioned disadvantages of the prior art devices of this general type, which, with little expenditure, permits exact beam alignment and positioning.
With the foregoing and other objects in view there is provided, in accordance with the invention, an apparatus for producing a printing form. The apparatus contains a holder for at least one printing form blank and at least one imaging module disposed movable relative to the printing form blank. The imaging module has at least one radiation source for producing image elements that accept printing ink. The radiation source is disposed aimed at a surface of the printing form blank and has an adjustable beam direction. A six-point mounting having three bearing locations accommodates the imaging module. The bearing locations have elements including spherical elements and bearing elements. The spherical elements rest on the bearing elements with one to three points, and for adjusting the beam direction, at least one of the elements of one of the bearing locations is disposed adjustably and defines an adjustable element.
The invention permits extremely fine adjustment of the point of incidence of write beams on a printing form blank. In the case of the simultaneous use of a plurality of radiation sources, it is ensured that no offset errors between the lines of adjacent write lines are produced. The setting of the point of incidence on the printing form blank is carried out once during a calibration operation during assembly. When a radiation source is replaced, only slight readjustment is necessary. The radiation sources are in each case mounted at three bearing locations on a total of six points. The bearing parts consist of hard materials, so that material deformations have no influence on the accuracy of the mount. It is advantageous if the bearing forces for an imaging module are introduced in such a way that the magnitudes of the force vectors acting on the six bearing points are virtually identical. The forces applied during fixing of an imaging module are accurately defined.
In accordance with an added feature of the invention, the bearing locations lie at corners of an isosceles triangle, in particular an equilateral triangle. The bearing locations lie in a plane located at right angles to the surface of the printing form blank, and one corner of the isosceles triangle faces the surface. Preferably, the bearing elements each contain two parallel cylindrical rollers. Alternatively, the bearing elements are prismatic shaped, in particular V-shaped.
In accordance with an additional feature of the invention, the bearing elements are fixed to the imaging module, and one of the spherical elements is displaceable.
In accordance with another feature of the invention, the spherical elements are fixed to the imaging module, and one of the bearing elements is displaceable.
In accordance with a further feature of the invention, the bearing elements have a common point of intersection. From the common point of intersection, the bearing elements exhibit an angle of 120 degrees to each other.
In accordance with another further feature of the invention, the adjustable element of one of the bearing locations faces the surface of the printing form blank and can be moved in a direction parallel to the surface.
In accordance with another added feature of the invention, the imaging module rests in the bearing locations by a spring force provided by a spring. The spring is connected between the imaging module and the bearing locations, the imaging module resting in the bearing locations by the spring force.
In accordance with a concomitant feature of the invention, a common slide is provided and the imaging module is one of a plurality of imaging modules disposed adjustably on the common slide. One of the spherical elements and the bearing elements is disposed on the common slide, and it being possible for the common slide to be positioned parallel to an axis of rotation of the holder carrying the printing form blank. The imaging modules are preferably disposed at equal intervals along the common slide, and the holder is preferably a printing form cylinder.
Other features which are considered as characteristic for the invention are set forth in the appended claims.
Although the invention is illustrated and described herein as embodied in an apparatus for producing a printing form, it is nevertheless not intended to be limited to the details shown, since various modifications and structural changes may be made therein without departing from the spirit of the invention and within the scope and range of equivalents of the claims.
The construction and method of operation of the invention, however, together with additional objects and advantages thereof will be best understood from the following description of specific embodiments when read in connection with the accompanying drawings.
Referring now to the figures of the drawing in detail and first, particularly, to
During the assembly of the apparatus for producing a printing form, and in the event of replacement of a defective laser module 30-33, it must be ensured that the distances a between two image points 60 produced by different laser modules 30-33 correspond to a predefined value in the y direction. If, during test imaging, the result is that there are deviations from a predefined value, then readjustment of at least one laser module 30-33 is necessary, for which purpose the laser modules 30-33 are disposed such that they can be adjusted. En order to adjust the laser modules 30-33 on the slide 14, adjusting screws 61-64 in holding blocks 65-68 are provided (FIG. 1). The adjusting screws 61-64 engage without play on a bearing element of one of the bearing locations 36, 39, 42, 45 in each case which faces the printing form blank 10. When an actuating screw 61-64 is operated, the corresponding bearing element on the laser module 30-33 is carried along, so that the laser module 30-33 completes a rotation about the z-axis. The beam direction 54 can therefore be adjusted over an angular range α, which lies in the x-y plane.
Each of the bearing locations 34-35 contains two bearing elements, which are each assigned to the slide 14 and the laser module 30-33. In the exemplary embodiment in
A further variant of a six-point mounting for a laser module is illustrated in a perspective illustration in FIG. 6. Use is made of spheres 79-81, which are fixed to a laser module in a plane 82. The spheres 79-81 are mounted in three v-shaped prisms 83-85 with the force FF of a spring. The result is six points of contact 86-91. If, as shown in detail in
The invention is not limited to the exemplary embodiment illustrated. For example, the radiation source can be provided once or many times. Individual radiant sources or a large number of radiant sources may be present in a radiation source, and experience common adjustment. In addition to lasers, LEDs or other radiant sources can also be used which have the capacity of setting an image point or a non-image point on a printing form blank. The printing form blank can be clamped on a printing form cylinder or formed in the manner of a sleeve. The positive or negative imaging can likewise take place on the surface of a suitable printing form cylinder. The invention can likewise be used in flat bed exposers and internal drum exposers. The apparatus according to the invention can be integrated in printing presses. The rotation of the spindle 24 and of the printing form cylinder 3 by the motors 8, 27, the processing of the rotary encoder signals and the driving of the laser diodes 57 can be controlled in a synchronized manner by the common control device 58. It is possible to register the position of the laser modules 30-33 by measurement and to carry out the adjustment automatically by actuating motors. In this case, the position of the laser modules 30-33 can be readjusted continuously if deviations occur during imaging operation.
Number | Date | Country | Kind |
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102 23 642 | May 2002 | DE | national |
Number | Name | Date | Kind |
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4409738 | Renander et al. | Oct 1983 | A |
4925288 | Harris | May 1990 | A |
5331343 | Ono et al. | Jul 1994 | A |
5367323 | Winsor | Nov 1994 | A |
5717451 | Katano et al. | Feb 1998 | A |
5748827 | Holl et al. | May 1998 | A |
6493957 | Takatsuji et al. | Dec 2002 | B1 |
Number | Date | Country |
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42 26 027 | Feb 1994 | DE |
Number | Date | Country | |
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20030222969 A1 | Dec 2003 | US |