The present invention relates to a device for the automatic finishing and cutting, on two perpendicular axes simultaneously, of paper and other graphic substrates in roll, provided with automatic correction of the errors due to skidding of the substrate, particularly for substrates printed with digital rendering systems and for large formats.
It is known that the photographic technique, including that of digital rendering, is undergoing a deep transformation and development, abandoning the printing with traditional optical systems in order to tend more and more towards ink-jet technology from digital “file” on rolls of substrates having the most varied features and dimensions. While, as to printing, remarkable speeds at a high definition have been obtained, the finishing technology of such printed substrates has been limited to developing paper cutters being able to cut along the two axes, but having great limits. In particular it was impossible to correct skidding of the roll, if badly rewound, or inaccuracies due to the image itself, if printed not perfectly parallel to the edge of the substrate. Further, it was impossible to cut along the X-axis, parallel to the image in a horizontal direction, if due to one or both the above-mentioned reasons, this side, when cut, is not perfectly at right angles with the paper cutter.
It is true that devices have been recently developed, particularly according to European patent application publications EP 0 951 973 and EP 1 268 143, both in the name of Fotoba International s.r.l., which have made it possible to automatically perform a precise cut of such substrates in a roll, however having two great limits, i.e., concerning the dimensions, a maximum format of 157 cm, and the drawback of being obliged to manually rotate the sheet by 90 degrees and reintroduce it into the paper cutter in order to obtain a perfect cut along all four sides. Given the greater and greater penetration into the market of this kind of printing, which is replacing the offset technology thanks to its flexibility and reduced costs for short runs, there has been a great increase of the processed volumes, whereby the manual finishing is no more acceptable, and it is thereby essential to automate finishing of the prints. In addition, while for small formats the consequences of possible skidding of the roll or of the image can be unimportant, in large formats these are not acceptable and their correction is made essential.
An object of the present invention is thus to overcome the drawbacks of the prior art for concerning the non-perfect correction of the consequences of a bad rewinding of the roll or of parallelism defects of the image with respect to the edges, making it possible to automatically cut the substrate on both the perpendicular axes simultaneously, without manual interventions.
Another important object of the present invention is that of being able to overcome the above-mentioned drawbacks and obtain the listed advantages also for formats larger than 157 cm width.
These objects are achieved with an automatic cutting device for the cutting and finishing, simultaneously on two axes X, Y perpendicular to each other, of paper and other graphic or photographic substrates with series of images marked by marks being detectable by optical sensors located near feeding rollers of the substrate, driven by a first motor, a movable cutting unit being provided suitable for cutting the substrate along the transverse direction X, perpendicular to the feed in the direction of an arrow F, along a cutting line Tx being adjustable by a second motor driven by possible non-alignment signals produced by the optical sensors and processed by a microprocessor, the cutting unit being driven by a third motor, further comprising a longitudinal cutting assembly for cutting the substrate along at least two cutting lines TY in a direction Y parallel to the feeding direction along arrow F. The device comprises a cutting element for each cutting line TY being provided, each of them being mounted in an adjustable position on a single axis of the cutting assembly, all the cutting elements being driven by a fourth motor, and a further fifth motor being provided for the double-directional shift along axis X of the cutting assembly in response to possible signals of non-parallelism of the image to the substrate edge, being detected by an optic cell, wherein the longitudinal cutting assembly is integral with the horizontal cutting unit.
The foregoing summary, as well as the following detailed description of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
a and 2b are schematic top plan views of the same device of
a and 3b are front and side views, respectively, of a preferred embodiment of the transverse movable cutting unit along the X-axis; and
With reference to the drawings, the automatic cutting device according to one embodiment of the present invention comprises a pair of rollers 1 (of which only the upper roller is illustrated) for the forward movement of a web substrate 10, being fed from a roll, in the direction of arrow F, and a motor 2 for the driving thereof. In a known way, as for example from EP 0 951 973, a pair of optical sensors 3, 3′, being positioned, in particular, at two sections of reduced diameter of the rollers, detects a mark (not illustrated) provided between two subsequent images printed on substrate 10. The mark can advantageously be, although not necessarily, of the type described in the above-mentioned European patent application publication in order to allow easy determination of its angulation with respect to the cutting line Tx.
The cut is performed by a movable cutting unit 4, driven by a motor 6 and carried in alignment with the desired cutting line Tx, according to the deviation signal detected by optical sensors 3, 3′ and the resulting input on a motor 5 in consequence of the processing of the signal itself by a microprocessor controlling the whole system, not shown in the drawings. Driven in such a way, motor 5 determines, in a known way, an angular shift of the cutting path, e.g., for the correction of an oblique trend as in
The cut is determined by the horizontal driving of the movable blade of the cutting unit 4 (along the X-axis), which can be accomplished in any known way, preferably according the embodiment that will be described more in detail with reference to
A motor 7 is also provided for the driving of the longitudinal cutting assembly 14, with a motor 8 for its axial shifting in both directions according to arrow F″ of
In fact, in its preferred embodiment, the longitudinal cutting assembly 14 is formed of two or more rotating blades located above the substrate 10 to cut and finish along cutting lines TY provided for (there may be at least another cutting line at the center of substrate 10 when the images are printed in pairs in side-by-side relation along X-axis). The rotating blades 14a, being driven in any known way by motor 7, are mounted at predetermined positions, according to the dimensions of the images to be cut, on a single shaft transversally moving and driven by the motor 8.
For this purpose, with particular reference to
In
Possible modifications can be made by those skilled in the art to the above-described and illustrated embodiment of the automatic cutting device according to the present invention, without going out of the scope of the same invention. Particularly, the optic cell 9 may not be integral with the longitudinal cutting assembly 14, although accomplishing the same functions with suitable expedients being within the abilities of one skilled in the art, and further the transverse cutting unit 4 can be differently accomplished from what is shown in
It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
MI2005A 000996 | May 2005 | IT | national |
This application is a Section 371 of International Application No. PCT/IT2006/000198, filed Mar. 29, 2006, which was published in the English language on Nov. 30, 2006, under International Publication No. WO 2006/126224 A1 and the disclosure of which is incorporated herein by reference.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/IT06/00198 | 3/29/2006 | WO | 00 | 11/2/2007 |