The invention relates to a device according to the preamble of claim 1.
Devices of this type have been developed and fabricated by the applicant for some time. A device according to the preamble of claim 1 is described, for example, in EP 0 835 952 A1 and in EP 0 984 083 A2, which both go back to the applicant.
In the known devices, threads of fluid are caused to oscillate by means of lateral air flows. As a result, the application pattern on the substrate can be evened out to a great extent.
In the previously known devices, the outlet openings are disposed along a straight line, transversely with respect to the direction of movement of the substrate. A plurality of nozzles or nozzle heads can be combined to form a linear row arrangement of any desired length. In this way, the application width along which the threads of fluid are to be applied to the substrate can be varied and adjusted. As a rule, the application width corresponds to the distance of the two outermost outlet openings from each other. The outlet width can also be enlarged to a multiple of this length by a plurality of nozzle heads—of identical width—being disposed beside one another.
In the devices from the prior art, outlet openings for the fluid and flow openings for the compressed air alternate. It is also known to dispose two flow openings between two fluid outlet openings in each case.
Starting from the known device, the object of the invention is to develop a device according to the preamble of claim 1 further in such a way that it makes flexible processing of a substrate possible.
The invention achieves this object with the features of claim 1 and, accordingly, is characterized in that the outlet openings are disposed along a curved path.
The principle of the invention is that the outlet openings for the threads of fluid are no longer disposed along a straight line, as in the prior art, but are now disposed along a curved path. The curved path can be formed, for example, by a circular arc or an ellipse or a parabola. Other curved paths with a regular or irregular curvature are also suitable. The path along which the outlet openings are disposed can run continuously and be curved continuously.
Through the choice of this special arrangement, the result is a geometry such that the outlet openings are in each case aimed at the substrate surface at different angles.
The device can advantageously be constructed symmetrically. The outlet opening coming closest to the substrate surface can be aimed orthogonally at the substrate surface. On this basis, in each case adjacent outlet openings can be aimed at the substrate surface with an increasing angular deviation from the right angle.
Consequently, the invention provides for the outermost outlet openings to be aligned at the largest possible angle of deviation with respect to the orthogonal. For example, the two outer outlet openings can be aligned in such a way that they enclose an angle of 70° between themselves. In other words, the respectively outer outlet opening is aimed at the substrate surface at such an angle that a deviation of about 35° from said orthogonal is provided. The outer outlet openings are then inclined at an angle of 90°-35°=55° relative to the substrate surface.
The invention covers devices with which adhesives, in particular hotmelt adhesives or other glues, can be applied. An application can be made, for example, to cardboard packaging, papers, textiles or any other desired materials. The invention also covers devices with which a lotion is applied for example to a hygiene product, such as a diaper.
The invention covers devices in which outlet openings and flow openings are arranged alternately. In this configuration of the invention, there is exactly one flow opening between two outlet openings in each case.
In an alternative refinement of the invention, there is a pair of flow openings between two outlet openings. Expressed in other words, in this variant each outlet opening is assigned its own pair of flow openings.
The invention also covers those devices in which each outlet opening is assigned more than two flow openings.
The invention covers devices in which outlet and flow openings are disposed along a common curved path. However, the invention also covers devices in which outlet openings, on the one hand, and flow openings, on the other hand, are disposed along different curved paths, for example curved paths arranged offset from one another. The latter can be imagined, for example, when the flow openings are disposed so as to be offset slightly relative to the outlet openings.
In the device according to the invention, it is preferably compressed air that flows through the flow openings, in order to subject the threads of fluid to a thread oscillation or a pendulum-like movement. The thread oscillation is used for a uniform coating or wetting of the substrate surface as a result of which the threads are deposited on the substrate surface in wavy lines, forming a network structure. Instead of compressed air, other flow fluids, such as gases, can also be used.
In an advantageous refinement, the two outer outlet openings enclose between themselves an angle of more than 20°. This means that imaginary geometric lines which run through the outlet opening along the outlet direction of the fluid enclose between themselves a 20° angle or a greater angle. In an advantageous refinement, the angle is more than 30°, in a further advantageous refinement more than 40°, in a further advantageous refinement more than 50°, in a further advantageous refinement more than 60° and in a further advantageous refinement more than 70°. In one exemplary embodiment of the invention, this angle is about 70°.
On the basis of the large angle described, it is possible for an application width of the fluid on the substrate which considerably exceeds the dimensions of the device to become possible. The threads of fluid can originate from a center substantially in the manner of a starburst and coat not only the region of the substrate which is moved along directly underneath the device but also regions of the substrate which, in relation to the direction of movement of the substrate, run laterally beside the device. Therefore, firstly it is possible to implement a device which can be produced beneficially with a compact design and simple construction. Secondly, this device can be employed variably and permits flexible coating of a substrate.
For instance, by changing the distance between substrate and outlet openings, the application width can be varied and adjusted to the desired dimension. By contrast, according to the prior art it was necessary to add or to remove a nozzle module having a plurality of outlet openings in order to change an application width.
In addition, according to the invention it is possible for a plurality of devices to be arranged beside one another or slightly offset—in relation to the direction of movement of the substrate—one after another. It is therefore advantageously possible also to achieve a homogeneous overlap region between two nozzle modules.
According to a particularly advantageous refinement of the invention, two flow openings are disposed on the outside of the respective outer outlet opening. The outermost outlet opening is thus not only flanked by two flow openings, a flow opening on the inside and a flow opening on the outside, but an additional outer flow opening is also provided. This is used to pull slightly upward or outward those threads of fluid which run on the outside and which, to this extent, have to cover the longest distance from the outlet opening as far as the substrate surface, in order in this way to counteract the influence of the force of gravity. This likewise serves to homogenize the application pattern.
According to a further advantageous refinement of the invention, the flow openings have different cross sections. Provision can be made here that, at least in a few flow openings close to the edge, i.e. placed on the outside, the cross section of the flow openings increases toward the edge. In addition, it is possible in this way for the threads of fluid arranged on the outside to have a more intense flow around them, such that detrimental influences of the force of gravity are compensated.
Advantageously, provision can be made for the application width to considerably exceed the distance of the two outer outlet openings from each other. It is therefore possible for the first time to achieve application widths which are far greater than the distance of the outer outlet openings from each other.
Furthermore, the invention relates to a method for applying a plurality of threads of a fluid. Such a method is known from the documents from the applicant described at the beginning.
The invention is based on the object of developing the known method further in such a way that more variable substrate coating becomes possible.
The invention achieves this object with the features of claim 9.
With respect to the advantages and effects of the technical features of the method as claimed in claim 9, the advantages described above in relation to claims 1 to 8 apply in an analogous way and to the same extent, so that reference is made to the passages there in order to avoid repetitions.
Further advantages of the invention emerge from the subclaims not cited and also from the description which now follows of the exemplary embodiments illustrated in the drawings, in which:
The device according to the invention is designated in its entirety by 10 in the figures. For reasons of clarity, identical or mutually comparable parts or elements, even to the extent that different exemplary embodiments are involved, are designated by the same designations, partly with the addition of small letters.
According to
The device 10 comprises a module 12, which is arranged above a substrate 11. The substrate 11 is in web form and has a substrate width S. The substrate is moved in the direction of movement X by drives, for example rollers, not illustrated. The nozzle module 12 is arranged in a stationary manner.
Not illustrated is the holder for the module 12. Load-bearing rods or similar stand arrangements can be provided for the holder, which advantageously permit the module 12 to be displaced in a direction Y transversely with respect to the direction of movement X, and also permit locking of the selected position of the module 12 relative to the substrate.
In one variant of the invention, provision can also be made in the device 10 according to the invention that a change can be made in the distance A between module 12 and substrate surface 19 or, strictly speaking, between the outlet openings 15 and the substrate surface 19.
The module 12 is supplied with compressed air via a line, not illustrated, and with hotmelt adhesive or with another fluid via a further line, not illustrated.
On account of a specific geometry of the outlet openings, which will be described in more detail later, the adhesive emerges from the nozzle module 12 through a plurality of outlet openings 15 as threads. Each outlet opening 15 is flanked by a flow opening 16, through which compressed air passes. As will be explained further later by using
If the compressed air is switched on and the adhesive feed is open, then, in the exemplary embodiment of
As already emerges from
The two air flow regions assigned respectively to each thread 17 of adhesive form and define residence regions 18a, 18b, 18c and so on for the threads of adhesive. Although this illustration should be understood as only schematic, the technical principle basically applies.
As already emerges from
On the basis of the choice of the relatively large angle between the two outermost threads of adhesive or between the outermost outlet openings 15, starting from a central nozzle module 12, coating is achieved not only of those regions of the surface 19 of the substrate 11 which run directly underneath the module 12, but also regions spaced apart laterally are also covered. The application width B of fluid on the substrate surface 19 which can be achieved according to
For reasons of completeness, it should be pointed out at this point that the dimension W, strictly speaking, describes the distance between the two outermost outlet openings 15 for the adhesive.
Depending on the choice of the distance A, the achievable application width B can be more than 1.5 times the distance W, advantageously more than 2 times, further advantageously more than 2.5 times, further advantageously more than 3 times, the distance W.
In order to achieve such a fan-like formation of an adhesive thread curtain, as best emerges from the schematic sketch of
The curved path 22 replaces the straight line known according to the prior art.
The curved form of the path 22 leads to the adhesive outlet openings 15g, 15h being aimed at the substrate surface 19 at different angles. The fan-like formation of the spray curtain according to
As indicated by
In the exemplary embodiment of
However, the invention also covers devices according to
In the exemplary embodiment of
Of course, in some exemplary embodiments of the invention, flow openings 16 and outlet openings 15 oriented exclusively parallel to one another can be provided. In other exemplary embodiments of the invention, there are exclusively flow openings 16 which are not arranged parallel to the respective outlet openings. Finally, there are exemplary embodiments in which flow openings 16 and outlet openings 15 disposed in parallel and also at acute angles to one another are provided.
As is revealed by the two different embodiments of
The plate 13e, which is significant for the invention, is shown by
While the exemplary embodiment of
The number of outlet openings depends on various parameters, such as the speed of the substrate, the desired application pattern, the type of adhesive, the available flow pressure of the compressed air and other factors. In particular, the desired application width also plays a major role.
The exemplary embodiment of
In a further refinement of the invention, provision is made for the flow openings 16 to have different cross sections. For instance, provision can advantageously be made in particular for a variation in the opening cross section to be made in some of the flow openings arranged on the outside, in such a way that the cross section of the flow opening increases toward the outside. The force of gravity can also be counteracted in this way and an evened-out coating can be achieved.
It becomes clear to those skilled in the art that the adhesive threads which are arranged at the side edge have to cover the longest path to the substrate and, to this extent, are most intensely subjected to the influences of the force of gravity. Here, with additional flow forces, it is possible for the threads not to be deflected too much on their long path toward the substrate. As a result, this leads to a uniform application of fluid.
The exemplary embodiment of
In the method according to the invention, provision can be made for the distance A between outlet openings 15 and substrate surface 20 to be varied, in order to adjust or to change the application width B.
With respect to
With respect to the figure description overall, it should be noted that this relates only to exemplary embodiments in which adhesive emerges as fluid. Other devices according to the invention, in which lotions or other fluids are used, can be operated in the same way.
From
In addition, reference should now be made to the exemplary embodiments of
In the exemplary embodiment of
Number | Date | Country | Kind |
---|---|---|---|
10 2009 035 152 | Jul 2009 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
5124111 | Keller | Jun 1992 | A |
5904298 | Kwok | May 1999 | A |
6074597 | Kwok et al. | Jun 2000 | A |
6378782 | Craine | Apr 2002 | B1 |
6719846 | Nakamura et al. | Apr 2004 | B2 |
Number | Date | Country |
---|---|---|
1189251 | Feb 2005 | CN |
1224468 | Oct 2005 | CN |
69809521 | Feb 2008 | DE |
0904849 | Mar 1999 | EP |
0835952 | Feb 2003 | EP |
1116521 | Jul 2007 | EP |
0984083 | Oct 2008 | EP |
H110305242 | Nov 1998 | JP |
2976085 | Nov 1999 | JP |
2001219107 | Aug 2001 | JP |
2004154665 | Jun 2004 | JP |
4008547 | Nov 2007 | JP |
4198793 | Dec 2008 | JP |
4474620 | Jun 2010 | JP |
Entry |
---|
International Search Report and Written Opinion for PCT/US2010/043321 dated Nov. 11, 2010. |
Number | Date | Country | |
---|---|---|---|
20160236226 A1 | Aug 2016 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 13387498 | US | |
Child | 15137579 | US |