The subject matter of the invention is an embossing tool for deforming smooth and embossed films.
Films made from metal or laminates of metal and plastic or paper, usually from aluminum, are used in the packaging industry for closing containers of semi-perishable food, such as yogurt cups, but also coffee capsules or coffee packets for commercial operations and for other applications. Cut-outs shaped corresponding to the opening to be closed on the container are punched out from such films and stacked for further processing, that is, the covering process. Punched blanks made from smooth films cause problems during further processing, especially during covering processes, because they can adhere to each other and consequently cannot be separated individually or only incorrectly. This leads to waste on the bottling and covering machines. Consequently, it has been usual for some time to provide embossments on the original materials for punched blanks used as covers. This embossment is typically applied with an embossing roller. The punched blanks provided with a rough or non-smooth surface tend to adhere together significantly less when they are placed together in stacks of thousands of pieces.
This deformation of the films, however, prevents the ability to apply product-specific markings in precisely planned areas. For example, barcodes must be applied, in order to be able to identify the individual containers after their production. For example, a coffee/tea preparation machine must be able to detect whether tea or coffee is in the inserted packaging closed by the film and what sort of product it is, in order to be able to perform the appropriate brewing process. In addition, by use of a barcode or an equivalent marking, the machine can detect from what company the container to be processed originates and whether this container can be processed on the machine or not. The barcode can store countless other information about the product.
If such a barcode is now applied to a rough film provided with embossments, it will be difficult for the reader in the processing machine to read the barcode, because the barcode has not been applied to a flat surface.
Devices are already known with which the areas in which barcodes must be applied are made smooth at a later time. Such a device uses a stamp with which the embossments made in a previous embossing process are made smooth and the printing area can be made flat. This procedure requires, in order to achieve somewhat acceptable results, i.e., smooth areas, high forces that excessively strain the embossing and punching/stamping device. Despite very high forces, a satisfactory result, that is, an absolutely smooth surface of the previously embossed, rough area, cannot be achieved.
One object of the present invention is now to create a device for deforming smooth and embossed films, with which embossments on films can be undone and a smooth surface of the film can be produced in a specified area.
Another object of the invention is also to apply embossments, that is, deformations, on smooth films with a lower embossing force than in conventional embossing.
This object is achieved by an embossing tool having one or more of the features of the invention. Advantageous constructions of the embossing tool are described below and in the claims.
Through an elastic support of the female die and/or the male die on the back side of the embossing area (raised sections or recessed sections), it is achieved that the embossed area can be undone with lower pressing force not only partially, but completely, and a smooth surface can be achieved on the film. Consequently, it is not only possible to smooth an embossed area again, but this procedure can also be achieved with a significantly lower force.
Not only is the removal or undoing of embossments achieved by the placement of the female die and/or the male die, but also the embossment of smooth film areas can be achieved with significantly lower force and thus less stress on the press/device.
The invention will be described in more detail with reference to two embodiments: Shown are:
In the schematic diagram in
The compensating element 13 can comprise a body made from polyurethane with a Shore hardness of 80 to 90 or a similar elastic plastic.
Optionally, a thin protective sheet 15 that is a few tenths of a millimeter thick lies above the compensating element 13, which can prevent the film 1 guided in the direction of the arrow A between the female die 5 and the male die 7 from friction on the surface of the compensating element 13 or can prevent it from being delayed or damaged by friction.
The female die 5 is mounted in a press on the upper, usually moving part. The male die 7 is mounted fixed on the usually stationary part of the press. A press is not shown in the figures, because its configuration has been known for a long time. The press can be driven hydraulically or mechanically, and the female die 5 can move in quick cycles onto the male die 7, while the film 1 is held in place for a short time for the embossing process.
Below, the procedure for undoing an area of the large-area embossment or multiple areas simultaneously will be described. The film 1 provided with a fine embossment, for example, an orange peel-like embossment, is guided from the coil 3 between the female die 5 and the male die 7 and held in place for a short time so that the female die 5 can be moved onto the male die 7 by the press in one stroke and a force or pressure with the raised sections 9 can be applied to the surface of the film 1. The support of the film 1 is here realized exclusively on the surface of the compensating elements 13 and—if necessary—the protective element 15 arranged between the film 1 and the male die 7, e.g., a very thin deformable sheet over the compensating element 13. Through this elastic underlay, which is arranged opposite the area of the raised section 9, it is possible, surprisingly, to completely undo the embossment present on the film 1 in the area between the raised section 9 and the compensating element 13.
The protective element 15 has no direct influence on the undoing of the embossments on the film 1. It protects the film 1 and its embossments that are also present on the bottom side of the film, so that there can be no friction disrupting the process there during the forward transport of the film 1 in the direction of arrow A. For embossed films 1 with minimum embossment depth and a very smooth and, in any case, easily sliding surface, the protective sheet 15 can also be eliminated.
Surprisingly, with this procedure, it is also possible to apply embossments of any shape on smooth, i.e., non-embossed films 1, which comprise only a partial area of the surface of the film or the entire film. In
In the exploded-view diagram according to
A mirror symmetric arrangement is provided for the male die 7, in which a circular ring-shaped raised section with the embossment pattern is formed on the surface. Below this is the circular ring-shaped compensating element 13 that is held in a circular ring-shaped recess 23 in the lower retaining plate 17. After joining these individual elements, the compensating element 13 that extends past the lower retaining plate 17 by a few tenths of a millimeter contacts the bottom side of the male die.
The embossment of the non-embossed film 1 is realized in a conventional way with the difference that the female die 5 and the male die 7 are not connected rigidly to the stamping/punching and embossing machine, but instead these two elements (female die and male die) are supported elastically on the back side in the area of the raised sections 21 extending past the embossment.
In order to achieve the local elasticity of the female die 5 and the male die 7, the two elements are made, for example, from brass. The thickness of the brass plate is in the range of 4 millimeters, that is, a thickness that guarantees local elasticity, namely in the area of the raised sections 21.
This elastically supported embossment makes it possible to achieve an optimum embossment result with significantly lower pressing forces by the stamping/punching and embossing device.
Number | Date | Country | Kind |
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1163/16 | Sep 2016 | CH | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/071594 | 8/29/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2018/046340 | 3/15/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
1161881 | Petrelius | Nov 1915 | A |
1752298 | Greffin | Apr 1930 | A |
2005340 | Jaffin | Jun 1935 | A |
2021105 | Kreider, Jr. | Nov 1935 | A |
2029567 | Hough | Feb 1936 | A |
2722038 | Freund | Nov 1955 | A |
4542691 | Kokrhanek | Sep 1985 | A |
5181464 | Kuhlman | Jan 1993 | A |
5540153 | Campbell | Jul 1996 | A |
6007754 | Crawford | Dec 1999 | A |
6186936 | Smith et al. | Feb 2001 | B1 |
6349639 | Smith | Feb 2002 | B1 |
7055427 | Caron | Jun 2006 | B2 |
8033215 | Wright | Oct 2011 | B1 |
8402889 | Caron | Mar 2013 | B2 |
20010000860 | Smith | May 2001 | A1 |
20040118304 | Corcoran | Jun 2004 | A1 |
20050126407 | Hixon | Jun 2005 | A1 |
20050211113 | Caron | Sep 2005 | A1 |
20050215405 | Corcoran | Sep 2005 | A1 |
20120082830 | Fawcett | Apr 2012 | A1 |
20120091630 | Teague | Apr 2012 | A1 |
20130059308 | Makarova | Mar 2013 | A1 |
Number | Date | Country | |
---|---|---|---|
20190240944 A1 | Aug 2019 | US |