CUTTING DEVICE AND METHOD FOR COMPOSING A CONTAINER
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- ALPLA WERKE ALWIN LEHNER
- Filing Date
- 2022-12-20
- Publication Date
- 2026-04-23
AI Technical Summary
Existing fiber-based containers face challenges in achieving dimensional accuracy and high-quality cuts, particularly at the container opening, due to material variations and deviations in the inner contour, which affect the interface with plastic containers and closures, leading to potential leaks and diffusion issues.
A cutting device utilizing a laser beam guided by a deflection device and focusing optics, which allows for precise cutting by maintaining a constant angle and distance relative to the container surface, ensuring a clean and uniform cut edge, even with varying material properties.
The solution provides a precise and reproducible cutting process that minimizes material waste, reduces the need for post-processing, and enhances the dimensional accuracy of fiber-based containers, ensuring a secure seal with container closures.
Description
[0001] The present invention relates to a cutting device and a method for preparing a container according to the preamble of the independent claims.
[0002] Various containers for holding liquids are known in the prior art. For example, glass bottles or plastic bottles for holding beverages are known. Containers made of fiber-based materials have also been proposed.
[0003] A fiber-based container was proposed in WO 2012 / 139590 A1. To manufacture this container, so-called pulp is placed in a mold and pressed against a corresponding wall of the mold using a flexible balloon, thus compressing it.
[0004] Pulp is a mixture of fibers and water, in particular natural fibers such as hemp fibers, cellulose fibers, or flax fibers, or a mixture thereof. The pulp may contain additives, such as those known from WO 2020 / 070255 A1, which, for example, improve the curing of the compressed pulp, influence its final appearance, or generally alter the properties of the pulp or the final container.
[0005] These containers are at risk of softening due to the liquid stored inside, potentially causing leaks or allowing substances to diffuse from the container into the liquid.
[0006] It has been proposed to equip such fiber-based containers with an inner layer of plastic, in particular to place a plastic bottle inside the fiber-based container, which can then perform the corresponding barrier functions. In this case, the fiber-based container merely provides a shell for a thin-walled plastic container. Such a combination is known from WO 2018 / 167192 A1.
[0007] It is known that certain inaccuracies can occur during production of both fiber-based containers that are subsequently coated with an inner layer of plastic (i.e., fiber-based shells) and fiber-based containers without such a layer. Since the containers and / or shells are formed in a negative mold, very high dimensional accuracy can be achieved with respect to their outer contour. However, the inner contour, or rather the inner surface of the container / shell, is subject to varying degrees of deviation depending on the specific properties of the pulp from which the container / shell is formed.These deviations are typically negligible, with the exception of those in the area of an opening in the container into which a plastic container is later inserted and / or to which a container closure is attached, or which is designed as a container neck with corresponding fastening elements for a container closure. Due to the material properties of the pulp, the upper, closing edge of the opening is subject to larger tolerances and is regularly fibrous. This is particularly disadvantageous because it forms an interface with the aforementioned plastic containers and / or container closures, and this interface must be dimensionally accurate.
[0008] Various attempts have been made to finish this edge of the opening, for example by cutting off excess material. This has led to an improvement and is suitable, for example, for containers into which a separate inner liner, such as a preform, is inserted. However, this is still too imprecise for fiber-based containers that have a neck and attached fasteners for interaction with a container closure. With such containers, a seal must be ensured between the opening and the container closure. In the field of plastic bottles, attempts have been made to cut containers using a laser cutting device, as described, for example, in EP 0 154 397 A2.
[0009] The object of the invention is to overcome at least one or more disadvantages of the prior art. In particular, a cutting device and / or a method is to be provided that enables fiber-based containers to be manufactured with dimensional accuracy and, in particular, provides a high-quality cut, as independent as possible of material variations in the container. Preferably, post-processing of the cut should be dispensed with.
[0010] This problem is solved by a cutting device according to claim 1 and a method according to claim 14. Further embodiments are described in the dependent claims.
[0011] A cutting device according to the invention for preparing a fiber-based container comprises a holding device for holding the fiber-based container. It also comprises a cutting laser for generating a laser beam, wherein the laser beam of the cutting laser and the fiber-based container are movable relative to each other for the purpose of removing excess material from the fiber-based container by means of the laser beam.
[0012] The fiber-based container is preferably a beverage bottle.
[0013] By providing a laser, or a laser beam, to remove the excess material, a very precise cutting edge can be formed.
[0014] Moving the laser beam relative to the fiber-based container allows it to be moved at a constant distance from the surface of the protrusion to be removed, while also maintaining a specific angle of the laser beam relative to the surface. In other words, this configuration allows the angle of the cutting edge to be kept constant along the entire length of the surface. This also results in a very flat cutting edge. Waviness of the cutting edge can be prevented.
[0015] The relative movement is preferably a rotational movement of the laser beam in relation to the container, i.e. a movement of the laser beam in the circumferential direction of the container.
[0016] The cutting device may have a rotary bearing, with a deflection device for guiding the laser beam arranged on the rotary bearing. The deflection device is preferably rotatable about a longitudinal axis of the fiber-based container.
[0017] The longitudinal axis of a fiber-based container is defined by its extension from the bottom of the container to the opening. The bottom of the container forms its base. The longitudinal axis typically also corresponds to the pouring direction and, in rotationally symmetrical bottles, to the axis of rotation.
[0018] In other words, an element attached to the rotary bearing rotates around the central axis or middle axis of a bottle or fiber-based container, or, if the bottle has an off-center opening, around the middle axis of the opening.
[0019] Especially in rotationally symmetrical containers, such an arrangement facilitates the guiding of the laser beam and the maintenance of a specific distance to the surface of the supernatant to be removed.
[0020] The deflection device also makes it possible to direct the laser beam into a specific path and / or around obstacles that may be in the direct path of the laser beam.
[0021] The deflection device makes it possible, in particular, to introduce the laser beam centrally in the direction of the longitudinal axis and to deflect it in such a way that it hits the surface of the protrusion to be removed essentially at right angles or, if desired, at any angle - with an accuracy of + / -1° or less to the longitudinal axis.
[0022] The cutting device may include focusing optics for focusing the laser beam. These focusing optics are, in particular, an integral part of the deflection device.
[0023] The focusing optics enable the laser beam to be precisely aligned with a surface of the protrusion to be removed; in other words, they provide a focal point of the laser beam that has a specific distance to the surface of the protrusion. This distance is nonexistent (0 mm) for thin walls, preferably less than 1 mm thick. For thicker walls, the distance can be negative; in other words, the focal point then lies within the wall thickness.
[0024] Such an arrangement allows for a uniform and clean cut. Furthermore, it ensures that the laser beam only exhibits its maximum power at its focal point and is therefore harmless to surrounding elements at a distance.
[0025] By designing the focusing optics as an integral part of the deflection device, it can be moved together with the deflection device and attached to the rotary bearing together with the deflection device, so that the focusing optics can be moved on a circular path around the fiber-based container.
[0026] The focusing optics can be arranged essentially at an angle of 85° to 95°, in particular at an angle of 89° to 91°, preferably perpendicular to the longitudinal axis, and radially spaced therefrom.
[0027] This results in the focusing optics being arranged essentially perpendicularly and at a constant distance to a surface of a protrusion to be removed, provided that the protrusion is essentially cylindrical.
[0028] Alternative arrangements, where the laser beam is angled, are also possible. This can result in a cutting edge that is, for example, inclined inwards or outwards, if desired.
[0029] A radial distance of the focusing optics to the longitudinal axis is preferably adjustable, in particular continuously adjustable.
[0030] This also makes it possible to process containers that do not have a rotationally symmetrical cross-section in the area of the excess to be removed, but rather, for example, an oval or polygonal cross-section.
[0031] During the rotational movement of the deflection device, the distance of the focusing optics can be adjusted, so that instead of a circular path, for example an elliptical path is also possible.
[0032] It is conceivable that a corresponding, pre-captured profile is transferred to the cutting device, so that the radial adjustment of the focusing optics is continuously adapted to the profile throughout the cutting process. This ensures a continuous adjustment of the radial distance, which allows the distance between the focusing optics, and thus the focal point of the laser beam, and the surface of the excess material to be removed to remain constant throughout the entire cutting process.
[0033] It would also be conceivable that, for example, in the case of uneven or unknown surface contours, this could be measured virtually in real time and the radial distance of the focusing optics could be continuously adjusted.
[0034] The cutting device may have an exit nozzle through which the laser beam is guided.
[0035] This protects the laser beam on the one hand, and on the other hand, an exit nozzle also allows the introduction of, for example, a process gas.
[0036] The deflection device of the cutting unit can have several deflection mirrors. These deflection mirrors allow for the easy redirection of the laser beam.
[0037] The deflection device preferably has a safety element downstream of each deflection mirror in the direction of the beam, or a safety element is arranged at the appropriate location.
[0038] This prevents an uncontrolled escape of the laser beam if, for example, one of the deflecting mirrors fails, such as breaking.
[0039] The safety elements can be designed, for example, as metal plates, especially as steel plates.
[0040] The deflection device is preferably designed as a substantially closed system consisting of individual tubes. This tube design at least partially shields the interior of the deflection device from the outside world, reliably preventing the ingress of dust or foreign matter into the laser beam path.
[0041] It is provided that a first extraction device for extracting vapors and / or dirt is arranged on the cutting device, in particular on the rotary bearing, wherein the first extraction device ends in particular in the area of the discharge nozzle.
[0042] Dirt, dust, or particles generated during the cutting process can thus be extracted. Fumes that may potentially have a harmful effect on health can also be extracted in this way.
[0043] It may be provided that a flushing device for flushing the interior or the interior of the container with a flushing gas is arranged on the cutting device, in particular on the rotary bearing.
[0044] During operation, the laser beam typically strikes the surface of the excess material to be removed from the outside. Dirt or particles generated during the cutting process are thus transported towards the interior of the fiber-based container. This can be counteracted by introducing purge gas into the interior of the container, blowing the particles out.
[0045] Additionally, the cutting device is provided with a second extraction device for extracting the purge gas from the interior of the container. Preferably, the second extraction device is designed as a component of the purge device.
[0046] The particles or gases carried from the interior of the container by the purge gas can be extracted directly using the second extraction device. Providing a second extraction device also promotes the formation of specific flow conditions within the interior of the container.
[0047] The design as an integral part of the rinsing device makes it possible to move it into the interior of the container together with the rinsing device, or to remove it from the interior of the container after the cutting process has been completed.
[0048] The holding device for the fiber-based container can have two grippers. Accordingly, the fiber-based container can be held symmetrically from two sides.
[0049] The deflection device is preferably vertically adjustable along the longitudinal axis. This design makes it possible to hold the fiber-based container statically in a specific location and, for processing (i.e., cutting off the excess), to move the deflection device to the appropriate position without having to adjust the container fixed in the holding device or its position.
[0050] Another aspect concerns a method for assembling a fiber-based container using a cutting device, in particular a cutting device as described herein. The method comprises the following steps: Providing a fiber-based container in a holding device, providing a laser beam from a cutting laser, and separating off any excess protrusion of the fiber-based container using the laser beam. where the excess overhang is removed by separating the fiber-based containers and the laser beam are moved relative to each other.
[0051] Moving the laser beam relative to the fiber-based container makes it possible to move the laser beam at a constant distance relative to the surface of the excess material to be removed and also to maintain a specific angle of the laser beam relative to the surface.
[0052] It may be provided that the laser beam is guided in a deflecting device and that this deflecting device is rotated around a longitudinal axis of the fiber-based container to generate the relative movement in order to separate the excess protrusion.
[0053] Such a process step can provide a simple process flow that is precisely adjustable and reproducible.
[0054] The laser beam can be focused onto a surface of the excess material to be removed using focusing optics, or the focus of the laser beam can be set to a specific distance from the surface. This distance can be zero or negative, so that the focal point lies within the material thickness.
[0055] Such focusing optics and appropriate focusing allow for a clean cut.
[0056] To execute the cut, the laser beam is positioned and activated along the longitudinal axis above a final cutting surface. The laser cut exhibits a vertical movement component until it reaches the cutting position of the final cutting surface.
[0057] In particular, this vertical motion component is also superimposed with a motion component directed in the circumferential direction of the fiber-based container, resulting in an essentially grinding cut.
[0058] By positioning and activating the laser beam above the final cutting surface, defects that occur during beam activation can be prevented. Typically, the initial pass of the laser beam through the object to be cut involves the introduction of more energy, resulting in localized burning of the object. By positioning the laser beam above the final cutting surface, this localized burning is avoided within the area of the final cut.
[0059] Preferably, after the final cut is completed, the laser beam is moved along the longitudinal axis across the final cut surface before being deactivated. The laser cut exhibits a vertical movement component until it reaches the final position where the laser beam is deactivated.
[0060] Just as at the beginning of the cut, an increased energy input may also occur at the end of the cut, resulting in burn marks. The vertical movement component can keep the burn mark away from the final cut surface.
[0061] Preferably, the vertical motion component also has a superimposed motion component directed in the circumferential direction of the fiber-based container. This also results in a grinding cut.
[0062] Both switching the laser beam on and off can occur while the laser is moving downwards or upwards, and while the container and the laser beam already exhibit the circumferential motion component of the fiber-based container. This also reduces the risk, or at least the extent, of a localized burn.
[0063] Preferably, the radial distance of a focusing optic to the longitudinal axis is initially set according to a container-specific parameter. This ensures that the focal point of the laser beam is always at the desired distance from the surface of the excess material to be removed, thus producing a cut surface of correspondingly high quality.
[0064] The container-specific parameter can be determined individually for each fiber-based container. It is conceivable that each container is measured before the cutting process, and the corresponding data is transferred to the cutting device, which then performs the cut accordingly with a static setting.
[0065] This parameter can also be set for entire batches, for example, if they are manufactured within a tight tolerance range.
[0066] In other words, a pre-recorded profile can be transferred to the cutting device, so that the radial adjustment of the focusing optics can be continuously adapted to the profile throughout the cutting process.
[0067] However, it is also conceivable that the radial distance is continuously adjusted to a contour of the fiber-based container during the separation or cutting process.
[0068] This ensures a continuous adjustment of the radial distance, which allows the distance between the focusing optics, and thus the focal point of the laser beam, and the surface of the excess material to be removed to remain constant throughout the entire cutting process.
[0069] It would also be conceivable that, for example, in the case of uneven or unknown surface contours, this could be measured virtually in real time and the radial distance of the focusing optics could be continuously adjusted.
[0070] To improve the quality of the cut edge, purge gas can be blown into the fiber-based container during the cutting process using a purge system. This purge gas injection allows dirt and particles generated during the cutting process to be blown out of the container's interior, or at least prevents them from settling inside.
[0071] Additionally or alternatively, it may be provided that during the separation process, exhaust air from the fiber-based container, in particular from the interior of the fiber-based container, is extracted with a second extraction device and / or from the area of an outlet nozzle with a first extraction device.
[0072] This contributes to an increase in cutting quality and eliminates the need for subsequent cleaning of the cut edge.
[0073] Additionally or alternatively, it may be provided that the deflection device is supplied with purge gas during the separation process.
[0074] This prevents, on the one hand, dust or dirt particles from settling and / or adhering to the deflection device and, in particular, to deflection mirrors arranged within or attached to it. On the other hand, by supplying the deflection device with purge gas at an outlet nozzle, a shielding gas flow can be generated, which provides protection from external influences in the cutting area. Such a shielding gas flow can, in particular, prevent dirt or dust particles from entering the laser beam.
[0075] After the cutting process, the separated excess material can be removed from the cutting device by means of a scraper ring.
[0076] The excess material can then be directed to disposal, for example, transported towards a separately arranged funnel or container.
[0077] The invention is explained below using figures. It shows: Figure 1: A perspective view of a cutting device; Figure 2: A sectional view through the cutting device according to the Figure 1 Figure 3: a detail view from the Figure 2 Figure 4: a perspective view of a fiber-based container.
[0078] The Figure 1Figure 1 shows a perspective view of a cutting device 100. The cutting device 100 comprises a holding device 50 for holding a fiber-based container 10. The cutting device 100 also includes a cutting laser 20, which is fixedly mounted on the cutting device 100. A support 32 is arranged above the fiber-based container 10, on which a rotary bearing 31 is mounted. The support 32 is vertically displaceable along the longitudinal axis X. The longitudinal axis X essentially corresponds to a longitudinal axis through the fiber-based container 10, and in the case of a rotationally symmetric fiber-based container 10, as shown here, the longitudinal axis X corresponds to the axis of rotation.
[0079] For the sake of clarity, feeding devices for feeding the fiber-based containers 10 and for removing the fiber-based containers 10 are not shown.
[0080] The Figure 2shows a sectional view through the cutting device 100 according to the Figure 1 The cut extends transversely to the longitudinal extent of the laser 20 through the longitudinal axis X. In the Figure 2 The holding device 50 is arranged in the lower region of the cutting device 100, by means of which a fiber-based container 10 is held in the cutting device 100. Above the holding device 50, a vertically displaceable support 32 is arranged on which a rotary bearing 31 is arranged. A deflecting device 30 for guiding the laser beam 21 is arranged on the rotary bearing 31. The laser beam 21 is generated by the laser 20. The laser beam 21 is generated such that it shines essentially in the direction of the longitudinal axis X from the output side of the laser 20. The laser beam 21 is deflected by means of the deflecting device 30 so that it is directed essentially perpendicularly onto the fiber-based container 10. This will be described below in relation to the Figure 3The rotary bearing 31 is arranged such that the deflection device 30 is movable about the longitudinal axis X, with the longitudinal axis X and the center of rotation essentially being superimposed. The deflection device 30 comprises individual tubes 24, 25, 26, and 27, each arranged at an angle to one another. At the respective interfaces of the individual tubes 24, 25, 26, and 27, deflection mirrors 23 are arranged within the tubes 24, 25, 26, and 27 to deflect the laser beam 21. Their function is explained below in relation to the Figure 3 The tube 24 of the deflection device 30 is variable in length, so that the support 32, together with the rotary bearing 31 and the remaining elements of the deflection device 30, can be moved vertically. The tube 25 of the deflection device 30 is also variable in length, so that a radial distance between the tubes 26 and 27 with respect to the longitudinal axis X can be adjusted.
[0081] The Figure 3 shows a detailed view of the Figure 2 As can be seen, several deflection mirrors 22 are arranged in the deflection device 30. Downstream of each deflection mirror 22, i.e., in the direction of the laser beam, a safety element 23 is arranged, which in this case is designed as a metal plate. Further along the deflection device 30 is a focusing optic 40 for focusing the laser beam, and downstream of it in the beam direction is an exit nozzle 28. Figure 2As explained, the radial distance of the deflection device, or rather the elements of the deflection device, downstream of the rotary bearing 31 is adjustable. For this purpose, an actuator 33 is arranged below the rotary bearing 31. By actuating the actuator 33, the distance of the focusing optics 40 to the longitudinal axis X can be adjusted. This allows the distance of the focal point of the laser beam 21 to be set relative to the surface of the protrusion 11 to be removed (see [reference]). Figure 4 ).
[0082] The deflection device 30 forms a substantially closed system into which a purge gas can be introduced, which flows through the outlet nozzle 28 during operation. This is evident in the illustration according to the Figure 3The holding device 50 is also part of the assembly. It has two grippers 51 and 52 that hold a fiber-based container 10 from two sides. A purging device 80 is inserted into the fiber-based container 10, through which a purging gas can be introduced into the interior of the fiber-based container 10. During operation, or rather during the cutting process, the introduction of purging gas prevents dirt or dust particles from becoming trapped inside the fiber-based container 10. A second extraction device 31 is integrally formed in the purging device 80. This device extracts the purging gas introduced into the fiber-based container 10, along with any dirt particles it may contain, from above the fiber-based container 10, or above an opening in the fiber-based container 10. A first extraction device 60 is arranged outside the fiber-based container 10, specifically in the area of the outlet nozzle 28.The first extraction device 60 extracts dirt and dust particles that form outside the fiber-based container 10, and at least part of the purge gas from the deflection device 30 can be recaptured.
[0083] The representation according to the Figure 3 The cutting device 100 is shown during operation. Before this state is reached, the deflection device 30, the first extraction device 60, and the rinsing device 80 are all arranged vertically above the fiber-based container 10. All these elements are attached together to the rotary bearing 31 and can be moved vertically with the support 32.
[0084] To remove excess material 11 from the fiber-based container 10 (see below) Figure 4To separate the fiber-based container 10, these aforementioned elements are moved vertically towards the fiber-based container 10. During this vertical movement, the rotary bearing 31, together with the deflection device 30 and all elements arranged on the rotary bearing 31, begins to rotate about the longitudinal axis X. The laser is also started up at this point, so that it reaches its preset power during both the vertical movement and the rotation, thus cutting the fiber-based container 10 above the final cutting edge 12 (see [reference]). Figure 4 ) shoots through.
[0085] After reaching the final vertical position, the rotary bearing 31 is moved a further 360° and then the support 32 is moved upwards again in a vertical direction and the laser 20 is then switched off.
[0086] In the Figure 3A protective plate is also shown opposite the exit nozzle 28, which prevents the uncontrolled propagation of the laser beam in case of failure.
[0087] The Figure 4 Figure 1 shows a perspective view of a fiber-based container 10. In the upper area, i.e., in the area of the neck, the fiber-based container 10 is shown in section, so that the cut edge 12 is visible. The cut therefore extends only through the excess overhang 11. After the cutting process, the cut edge 12 forms a final upper edge or upper opening of the fiber-based container 10, onto which a suitable lid can be placed.
[0088] After this processing, the fiber-based container 10, which is now assembled, is subjected to further processing steps. For example, in a subsequent step, the inside of the fiber-based container 10 can be coated and / or the fiber-based container 10 can be fed into a filling system.
Claims
1. A cutting device (100) for manufacturing a fiber-based container (10), wherein the cutting device (100) has a holding device (50) for holding the fiber-based container (10) and a cutting laser (20) for generating a laser beam (21), the laser beam (21) of the cutting laser (20) and the fiber-based container (10) being movable relative to one another in order to separate an excess projection (11) of the fiber-based container (10) by means of the laser beam (21), wherein a first suction device (60) for extracting vapors and dirt is arranged on the cutting device (30), characterized in that said device has a second suction device (81) for extracting the flushing gas from the interior of the container (10).
2. The cutting device (100) according to claim 1, characterized in that the cutting device (100) has a rotary bearing (31), a deflection device (30) for guiding the laser beam (21) being arranged on the rotary bearing (31) so that the deflection device (30) is rotatable about a longitudinal axis (X) of the fiber-based container (10).
3. The cutting device (100) according to either claim 1 or claim 2, characterized in that the cutting device (100) has focusing optics (40) for focusing the laser beam (21), this focusing optics (40) being in particular an integral part of the deflection device (30).
4. The cutting device (100) according to claim 3, characterized in that the focusing optics (40) is arranged at an angle of 85° to 95°, in particular at an angle of 89° to 91°, preferably perpendicularly, to the longitudinal axis (X), and radially spaced therefrom.
5. The cutting device (100) according to claim 4, characterized in that a radial distance between the focusing optics (40) and the longitudinal axis (X) is adjustable, in particular continuously adjustable.
6. The cutting device (100) according to any one of claims 2 to 5, characterized in that the laser beam (21) is guided through an outlet nozzle (28).
7. The cutting device (100) according to any one of claims 2 to 6, characterized in that the deflection device (30) has a plurality of deflection mirrors (22), a safety element (23) being arranged downstream of each deflection mirror (22) in the direction of incidence.
8. The cutting device (100) according to any one of claims 2 to 7, characterized in that the deflection device (30) is designed as a substantially closed system of individual tubes (24, 25, 26, 27).
9. The cutting device (100) according to any one of claims 2 to 8, characterized in that the first suction device (60) is arranged on the rotary bearing (31), the first suction device (60) ending in particular in the region of the outlet nozzle (28).
10. The cutting device (100) according to any one of claims 2 to 9, characterized in that a flushing device (80) for flushing the interior of the container (10) with the flushing gas is arranged on the cutting device (100), in particular on the rotary bearing (31).
11. The cutting device (100) according to claim 10, characterized in that the second suction device (81) being designed in particular as a component of the flushing device (80).
12. The cutting device (100) according to any one of claims 2 to 11, characterized in that the holding device (50) has two grippers (51, 52).
13. The cutting device (100) according to any one of claims 2 to 12, characterized in that the deflection device (30) is adjustable along the longitudinal axis (X).
14. A method for manufacturing a fiber-based container (10) using a cutting device(100) according to any one of claims 1 to 13, comprising the steps of: - Providing a fiber-based container (10) in the holding device (50), - Providing a laser beam (21) of the cutting laser (20), - Separating an excess projection (11) of the fiber-based container (10) by means of the laser beam (21), wherein the fiber-based container (10) and the laser beam (21) are moved relative to one another in order to separate the excess projection (11), characterized in that the laser beam (21) is positioned and activated in the direction of the longitudinal axis (X) above a final cutting surface (12) and the laser cut has a vertical movement component up to a cutting position of the final cutting surface (12) .
15. The method according to claim 14, characterized in that the laser beam (21) is guided in a deflection device (30) and said device is rotated about the longitudinal axis (X) of the fiber-based container (10) in order to separate the excess projection (11).
16. The method according to either claim 14 or claim 15, characterized in that the laser beam (21) is focused by means of focusing optics (40) to a certain distance from the surface of the excess projection (11) to be separated.
17. The method according to any one of claims 14 to 16, characterized in that after completion of the cut of the final cutting surface (12), the laser beam (21) is moved in the direction of the longitudinal axis (X) over the final cutting surface (12) before the laser beam (21) is deactivated and the laser cut has a vertical movement component up to the final position in which the laser beam (21) is deactivated.
18. The method according to any one of claims 14 to 17, characterized in that a radial distance between focusing optics (40) and the longitudinal axis (X) is initially adjusted according to a container-specific parameter.
19. The method according to claim 18, characterized in that the container-specific parameter is determined individually for each fiber-based container (10).
20. The method according to either claim 18 or claim 19, characterized in that the radial distance is continuously adapted to a contour of the fiber-based container (10) during the separation process.
21. The method according to any one of claims 14 to 20, characterized in that, during the separation process, flushing gas is blown into the fiber-based container (10) by a flushing device (80).
22. The method according to any one of claims 14 to 21, characterized in that, during the separation process, exhaust air is extracted from the fiber-based container (10) by means of a second suction device (81) and / or from the region of an outlet nozzle (28) by means of a first suction device (60).
23. The method according to claim 15 and any one of claims 14 to 22, characterized in that, during the separation process, the deflection device (30) is supplied with flushing gas.
24. The method according to any one of claims 14 to 23, characterized in that, after the separation process, the separated excess projection (11) is stripped off the cutting device (100) by means of a stripping ring.