The invention relates to a cutting unit for providing transversal cuts to packaging containers being connected to each other by transversal seals. The present invention also relates to a method for providing transversal cuts, as well as to a computer program and to a computer-readable medium.
Carton-based packaging containers have been commercially available for many years. One example is the tetrahedron shape, which was developed already in the 1950s and this type of packaging container has proven to be very suitable for various food products such as juice drinks, mils, spreadable cheese, ice-lollies, etc. The general technical packaging concept for carton-based packaging containers is based on forming a tube by sealing two longitudinal ends of a web of packaging material to each other, filling the tube with the content to be packaged, and providing upper and bottom transversal seals to the tube in order to seal individual packaging containers. While the tetrahedron shape is obtained by providing the upper and bottom transversal seals approximately perpendicular to each other, other rectangular shaped packaging containers are obtained by arranging the upper and bottom transversal seals in parallel with each other. During the transversal sealing, or immediately after, the downstream packaging container is separated from the upstream tube by a transversal cut close to the transversal seal.
The transversal cut is provided by means of a cutting unit. The cutting unit has a knife acting against an anvil, whereby the connected packaging containers are fed through a distance between the knife and the anvil. As the knife moves towards the anvil, it will cut through a transversal seal of a packaging container thereby separating the packaging container from the upstream series of connected packaging containers.
For some packaging containers, such as the above-mentioned example of ice-lollies, it may be desired to keep a certain number of individual packaging containers connected by means of perforations in a string, thereby allowing a consumer to easily draw one individual ice-lolly from the string upon use. As the string of connected packaging containers must have a limited length a dedicated cutting unit is equipped with a knife and a perforation tool operating on the sealed series of connected packaging containers in an alternating manner.
Although such a solution will provide the desired result of alternating cuts and perforations, a vast amount of manual configuration is needed for changing operational parameters such as tube material thickness, and the frequency and order of cuts and perforations.
There is thus a need for an improved cutting unit providing a flexible and versatile configuration so that the cutting unit can be easily adjusted to different cutting and perforation schemes.
It is an object of the invention to at least partly overcome one or more of the above-identified limitations of the prior art. In particular, it is an object to provide a cutting unit having a rotatable anvil which, depending on rotational position, allows an associated knife to either cut or perforate the packaging material.
To solve these objects a cutting unit is provided. The cutting unit is configured to provide transversal cuts and/or perforations to a string of packaging containers connected by transversal seals. The cutting unit comprises a knife assembly and an anvil assembly rotatable against each other to form a nip for receiving a transversal seal of the string of packaging containers. The anvil assembly comprises an anvil blade having a first region and a second region such that when the first region is aligned with a knife blade of the knife assembly at the nip a cut is produced, and when the second region is aligned with the knife blade at the nip a perforation is produced.
The hereby disclosed cutting unit provides the advantage of being able to control, for each revolution of the anvil assembly, which one of the first or second regions of the anvil blade that will form the nip together with the knife blade. Thereby it is also possible to determine, for each revolution of the anvil assembly, if a cut or a perforation is to be produced.
The first and second regions may be arranged on a common anvil surface. Simplified control of the operation of the cutting unit is thereby accomplished.
The anvil surface may be curved. Preferably, the anvil surface is having an eccentric radius. Each position of the anvil surface will thereby provide a pre-determined action due to its distance to the knife blade. In other words, the nip width can be controlled over the area of the first and second regions.
The first region may have a uniform surface. Accordingly, a homogenous cutting action will be effected across the entire width of the transversal seal of the packaging container.
In an embodiment, the second region is provided with a plurality of depressions. The cutting action will thereby be reduced at the position of a depression which will lead to a perforation across the width of the transversal seal.
The depth of each depression may increase in a circumferential direction away from the first region. This means that it will be possible to control the level of perforation by controlling which position at the second region of the anvil blade that will form the nip with the knife blade. A more shallow depression will lead to a less distinct difference between a cutting action and a perforation action, while the opposite applies for a deeper depression.
The width of each depression may increase in a circumferential direction away from the first region. It is thus also possible to control the dimensions of the perforation, i.e. the lateral ratio between a cutting action and a perforation action.
Each depression may be triangular shaped. Hence, a linear relationship between perforation action width and rotational positioning of the anvil blade is thereby accomplished.
The depressions may be arranged in at least one linear array. A linear perforation is thereby accomplished, which provides facilitated tear opening of the consumer.
The depressions of a common array may be spaced apart at an equal transversal distance. This also improves the tear opening for a user, as the force required to open the perforation will be constant.
The cutting unit may further comprise a control unit configured to control the rotation of the anvil assembly relative the knife assembly such that the nip is formed between the knife blade and a pre-determined position of the anvil blade. Automatic control of the action of the cutting unit is thereby allowed, leading to great flexibility in defining the properties of the final product, i.e. the string of packaging containers.
According to a second aspect, a method for providing transversal cuts and/or perforations to a string of packaging containers connected by transversal seals is provided. The method comprises i) feeding said string of packaging containers through a cutting unit such that a transversal seal of the string of packaging containers is received between a knife assembly and an anvil assembly, and ii) rotating the knife assembly and the anvil assembly such that a transversal seal of the string of packaging containers is received by a nip formed between a knife blade of the knife assembly and an anvil blade of the anvil assembly. If the nip is formed between the knife blade and a first region of the anvil blade, a cut is produced, and if the nip is formed between the knife blade and a second region of the anvil blade, a perforation is produced.
According to a third aspect, a computer program is provided. The computer program comprises instructions to cause the cutting unit of the first aspect to execute the steps of the method of the second aspect.
According to a fourth aspect, a computer-readable medium is provided. The computer-readable medium is having stored thereon the computer program of the third aspect.
Still other objectives, features, aspects and advantages of the invention will appear from the following detailed description as well as from the drawings.
Embodiments of the invention will now be described, by way of example, with reference to the accompanying schematic drawings, in which
With reference to
The cutting unit 10 is arranged at a position of the packaging machine so that it receives the string 2 of packaging containers 1. As can be seen in
The cutting unit 10 comprises a knife assembly 20 and an anvil assembly 30. The knife assembly 20 is driven in a rotational manner by a first motor 40a. In a similar manner, the anvil assembly is driving in a rotational manner by a second motor 40b. The first and second motors 40a-b are preferably servo motors, allowing for precise rotational control of the knife assembly 20 and the anvil assembly 30.
A control unit 50 forms part of the cutting unit 10 and is programmed to provide control signals for the motors 40a-b in order to control the rotation of the knife assembly 20 and the anvil assembly 30. The knife assembly 20 is connected to the anvil assembly 30 by means of a pivot point 60. A spring 62 applies a spring force between the knife assembly 20 and the anvil assembly 30 so that precise positioning of the knife assembly and the anvil assembly is possible.
The cutting unit 10 is preferably arranged in a horizontal direction, so that it can receive a vertically running string 2 of packaging containers 1.
A cross-sectional view of the cutting unit 10 is shown in
The knife blade 22 and the anvil blade 32 define a nip 12 when they are arranged in a respective position facing each other, as shown in
In
As is shown the rotational shafts 21, 31 are similar in shape, wherein the cross-section is in the form of a polygon. The shape of the rotational shafts 21, 31 allow the respective shaft 21, 31 to change its lateral distance to the string 2 as the shafts 21, 31 rotate. Hence, at the rotational positions shown in
As the shafts 21, 31 continue to rotate in the directions indicated in
Such position of the knife assembly 20 and of the anvil assembly 30 is shown in
Each end of the respective rotational shaft 21, 31 is provided with a ring 21a-b, 31a-b. The rings 21a-b of the knife assembly 20 are fixed, while the rings 31a-b of the anvil assembly are provided with bearings. During the assembly of the cutting unit 100 the rings 21a-b, 31a-b are pressed against each other by means of the spring 62 (see
An example of the knife assembly 20 is shown in more detail in
The length of the knife blade 22 is designed to cover at least the entire width of the transversal seal 3 to be cut. The knife blade 22 is arranged in parallel with the rotational axis R1 of the shaft 21.
As can be seen in
An example of the anvil assembly 30 is shown in more details in
The length of the anvil blade 32 is designed to cover at least the entire width of the transversal seal 3 to be cut. The anvil blade 32 is arranged in parallel with the rotational axis R2 of the shaft 31.
As can be seen in
Now referring to
While the first region 34 is provided with a uniform surface, the second region 35 is provided with a plurality of depressions 36. In the shown example, the depressions 36 are triangular shaped having the apex of each triangular arranged at the boundary B between the first and second regions 34, 35. The depth of each depression 36 is increasing in a circumferential direction away from the first region 34, i.e. in a direction away from the apex. Due to the triangular shape, the width of each depression 36 is also increasing in a circumferential direction away from the first region 34.
As shown in
The construction of the anvil blade 32, and especially the curved anvil surface 33 being provided with the first region 34 and the second region 35, allows precise control of the width of the nip 12, as well as control of whether to produce a cut or a perforation.
A schematic illustration of such control is given in
By controlling the rotation of the anvil assembly 30 slightly differently such that the bottom portion of the first region 34 will instead be aligned with the knife blade 22 to form the nip 12 (see
Another option is shown in
Yet further, as shown in
Due to the uniformly curved anvil surface 33, continuous adjustment is possible between the extreme positions shown in
Now turning to
From the description above follows that, although various embodiments of the invention have been described and shown, the invention is not restricted thereto, but may also be embodied in other ways within the scope of the subject-matter defined in the following claims.
Number | Date | Country | Kind |
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20182528.8 | Jun 2020 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/066826 | 6/21/2021 | WO |