The present invention refers to a double-walled preform for the making of double-walled containers following to the blowing of said preform and, more precisely, to an assembled preform which consists of two concentric preforms where a first internal preform is fixedly inserted inside a second external preform. The present invention also relates to the manufacturing process of the aforesaid double-walled preform.
The present invention finds application in all fields where a container intended to contain liquids requires adequate barrier protections which a double-walled container can provide, and to preserve the characteristic properties of the contained liquid over time.
As is known, containers obtained by blowing PET preforms or similar material are intended to contain liquids in various product sectors: beverage, chemical, pharmaceutical, food, etc.
For certain uses and applications, it is necessary to make blown PET containers or similar material, and where such containers have double walls. More precisely, the system of providing two concentric preforms is used when it is necessary to improve and enhance some characteristics that cannot be obtained using a single preform. The constructive solution of a double walled container is particularly suitable for containers intended to contain liquids which require adequate protection to preserve their characteristic properties, and by preserving the liquid product from contacting with air or other environments that can alter the chemical composition of the product.
For example, typical is the case of a traditional container which, when partially emptied, shows an increase in the head space with a corresponding increase in the amount of air in contact as the product comes out of the container. One of these conditions occurs for beer kegs.
In fact, in traditional containers, the beer is dispensed by blowing CO2. The head space as the beer is dispensed is enriched with CO2, altering the balance between the liquid phase and the gaseous phase of the beer contained in the keg.
For the construction of a double-walled container, the blowing of two preforms made in PET or similar material is provided for the making thereof, in which a first preform is inserted coaxially inside a second preform.
According to this embodiment, it is possible to give the two individual preforms different mechanical features depending on the final use of the container and according to the liquid to be contained.
For example, it is possible to obtain a container, through the blowing process of two preforms, wherein the external preform will have the function of mechanically protecting the internal container, while the internal preform, which is the one destined to receive the liquid, will have all the characteristics and treatments necessary to preserve the properties of the liquid contained (for example, O2 barrier, CO2 barrier, UV barrier, etc.).
This constructive solution entails the disadvantage given by the fact that during the production process of a double preform it is provided the step of inserting the internal preform into the external preform, which is normally carried out upstream of the blowing line. This assembly operation is performed by sending the two preforms separately to an expensive automation system which inserts the two preforms one into the other, and conveying them to the next blowing phase for the production of the container.
On the other hand, according to an alternative production process to the one above indicated, the internal and external preform are assembled downstream of the production line. This alternative constructive solution has the disadvantage that consists in the fact that the assembled preform is fixed through an expensive welding system so as to prevent the two preforms from slipping off during their handling.
The present invention aims to solve the aforementioned disadvantages by providing an assembled double-walled preform and its production process, wherein the assembly of the two preforms (internal and external) is provided in a permanent, simple and effective way.
Thanks to the technical solution of the present invention, the double-walled container is thus obtained by blowing an already assembled preform which contains a first and a second preform inserted coaxially into the first preform in a locked manner.
Therefore, the object of the present invention is to provide two preforms with a geometry such as to allow a fixed and permanent assembly of one preform inside the other, in such a manner to ensure that during the necessary handling both for the transporting of the preforms and for their processing up to the blowing of the same, the stability of the assembly be not compromised.
The object of the present invention is a process for the production of an assembled concentric preform with a double wall, which comprises a first internal preform inserted coaxially into a second external preform, and wherein the two concentric preforms are mechanically assembled in an irreversible manner in such a way as to form a single indivisible body.
According to an aspect of the present invention, the two concentric preforms are irreversibly coupled and can be moved and processed as if they were a single preform.
According to another aspect of the present invention, the two preforms are produced individually, with materials which can be both homogeneous or inhomogeneous.
The assembled double-walled concentric preform obtained by the aforesaid process also forms an object of the present invention.
Therefore, the present invention provides a process for manufacturing a double-walled preform, and an assembled preform thus obtained substantially according to the appended claims.
A detailed description will now be provided of two preferred embodiments of a double-walled preform and the relevant assembly process according to the present invention, given by way of non-limiting example, with reference to the attached figures, wherein:
With reference now to
As can be seen in
The external preform 10 has a neck region 2 which includes a substantially smooth internal surface 3, and an external surface 4 which constitutes the thread 5 for coupling with a relevant cap (not shown in the figures) in the manner already known.
On the other hand, the internal preform 11 can be completely included/contained inside the external preform 10 or, alternatively, surmounting the latter for a short distance (as shown in
Similarly to the external preform 10, the internal preform 11 also has a neck region 12 which has an inner surface which is normally cylindrical or slightly frusto-conical in shape, and an outer surface which typically has two contacting regions 13 and 14 for interfacing on the inner surface 3 of the respective neck region 2 of the external preform 10 (better illustrated below).
As can be seen in the figure, both the external 10 and the internal 11 preform once assembled generate a space 6 between the external preform 10 and the internal preform 11, the space 6 being able to generate a volume of gas in the blown container which is functional for operation of the latter (better illustrated below).
As can be seen in
Similarly and as illustrated in
Further, as can be seen in
With reference now to
For the sake of clarity, same parts will have same numbers and the detailed description thereof will be here omitted as already given above.
According to the present embodiment, an external preform 10 is provided having a neck region 2, said neck region 2 having an inner surface 3 and an outer surface 4 on which a thread 5 is formed (for the purpose and in the manner already known).
On the inner surface of the external preform 10 and at a region below the neck region 2, a series of longitudinal grooves 100 are formed in the material of the external preform 10. As it will be better illustrated below, the function of the series of grooves 100 is to create preferential gas flow channels from/to the inner volume 6 and through the neck region 12 of the second internal preform 11, when the latter is assembled inside the first external preform 10 (the internal preform 11 not being shown in the figure).
With reference now to
For the sake of clarity, same parts will have same numbers and the detailed description thereof will be omitted here been already given above.
According to this first embodiment, the internal preform 11 has a neck region 12 which has an inner surface which is normally cylindrical or slightly frusto-conical in shape, and an outer surface which has two contacting regions 13 and 14 for interfacing with interference onto the surface 3 of the respective neck region 2 of the outer preform 10 when the internal preform 11 is inserted into the external preform 10 (the latter not being shown in the figure).
The contacting region 13 is a substantially smooth annular region, while the contacting region 14 consists of a protruding annular edge, which has a series of vertical grooves 110, which are adapted to cooperate with the grooves 100 of the external preform 10 when the internal preform 11 is assembled inside the external preform 10 (the latter not in the figure), and in such a manner as to create preferential gas flow channels from/to the inner volume 6 and through the neck region 12 of the internal preform 11.
Further, at the region below the contacting region 14, a series of protruding elements 111 are integrally formed on the body material of the second preform 11, and having a longitudinal shape and are arranged in an inclined manner with respect to the longitudinal axis of the inner preform 11. It is necessary here to point out that, similarly to the grooves 110, also the series of protruding elements 111 are capable to cooperate with the grooves 100 when the internal preform 11 is assembled inside the external preform 10 (the latter not in the figure), and in such a manner as to create preferential gas flow channels from/to the inner volume 6 and through the neck region 12 of the internal preform 11.
Furthermore, at the neck region 12 defined between the two contacting regions 13 and 14, a series of rectangular slot-shaped ports 15 are formed, perimetrically arranged onto the neck region 12, each port 15 communicating the outer surface of the neck region 12 with the inner surface of the latter (better illustrated below).
With reference now to
It will be apparent to those skilled in the art that the arrangement of the ports 15 and the associated grooves 150 is such that once the double-walled preform 1 has been assembled, a series of communication channels are created for the flow of gas to/from the inner volume 6 and through the neck region 12 of the internal preform 11 and towards the outside of the preform 1 through the ports 15 and the relevant grooves 150.
This arrangement allows the flow of the gas contained in the inner volume 6 during operation and/or emptying of the blown container obtained with the aforementioned assembled preform 1 of the present invention.
With reference now to
As can be seen in the figure, the arrangement of the protruding elements 111 on the outer surface of the internal preform 11 is such that they are arranged in an inclined manner with respect to the longitudinal axis of the preform 11. Further, they are grouped into groups of protruding elements 111 and separated one group from the other, and in such a way as to define a region 112 which is free from protruding elements 111. It should be noted here that the arrangement of the protruding elements 111 is such that once the preform 1 has been assembled (that is, when the internal preform 11 is inserted inside the external preform 10, the latter not in the figure), the series of protruding elements 111 allows the gas inside in the inner volume 6 to flow out faster by cooperating with the grooves 100 with a whirling motion, and through the ports 15 and 150 in the neck region 12 of the internal preform 11 towards the outside of the preform 1.
With reference now to
For the sake of clarity, same parts will have the same numbers and the detailed description thereof will be here omitted as already given above.
As can be seen in the figure, this second embodiment differs from the previous one in that the contacting region between the internal preform 11 and the external preform 10 (the latter not in the figure) consists of a single substantially smooth annular surface 16 obtained at the external surface of the neck region 12. The contacting surface 16 has a plurality of longitudinal grooves 110, each of which communicating with a respective groove 150 (located at the inner surface of the neck region 12) and each communicating with the other through a respective opening 15. Further, the arrangement of the protruding elements 111 at the outer surface of the inner preform 11 is inclined with respect to the longitudinal axis of the inner preform 11 as per the first embodiment.
Similar to the previous embodiment, the protruding elements 111 are grouped into groups of protruding elements 111 and separated one group from the other, and in such a way as to define a region 112 free from protruding elements 111. This arrangement, once assembled the preform 1 (that is, when the internal preform 11 is inserted inside the external preform 10, the latter not in the figure), it allows the gas in the inner volume 6 to flow out faster by cooperating with the grooves 100 and the elements 111 with a whirling motion, and through the grooves 110, the ports 15, and the grooves 150 at the neck region 12 of the inner preform 11 towards the outside of the preform 1.
With reference now to
More precisely, once the preform 1 has been assembled according to the embodiments described above, the same it is blown according to an industrial process as already known in the state of the art, and with the aim of obtaining a double-walled blown container (only the top region of the neck region of the container being illustrated in the figure).
The container thus obtained has an inner volume for containing a liquid, as for example a gaseous drink or the like, and a second volume defined by the inner space existing between the two walls (internal and external), the second volume surrounding the internal wall of the container.
The container neck does not undergo plastic deformations during the forming (blowing) phase of the preform, thus preserving the original structure of the assembled preform. According to the present invention, the coupling at the contacting regions 13, 14 or 16 between the two preforms 10 and 11 is preferably chosen with an interference comprised in the range of 0.2 mm, but can be included in the range from 0.02 mm up to 0.5 mm depending on the applications and the final volume of the double-walled container obtained after the blowing of the assembled preform.
Therefore, as illustrated in the figure and according to the present invention, the arrangement of the grooves 100 on the inner wall of the external preform, and of the grooves 110 and of the ports 15 and 150 and of the protruding elements 111 on the outer wall of the internal preform is such that a preferential channel is obtained as illustrated by the arrows F, and into which channel the gas contained in the inner volume 6 between the external wall 10 and the internal wall 11 can flow more easily and quickly during operation and/or emptying of the blown container (i.e., both during filling up the blown container, during the emptying of the blown container, and during the recycling of the container).
The facilitated flow of the gas through the aforementioned grooves 100, 110, 15,150 allows to ensure the absence of an overpressure inside the container, which could compromise the safety of the operators.
A description of the manufacturing process of the assembled preform 1 will now be provided.
First, the external preform 10 and the internal preform 11 are separately formed, each by injection moulding in a respective mould, and with a material which is chosen according to the applications for which the double-walled container is intended for, the container being obtained by blowing the said double preform 1 once coupled.
Subsequently, the internal preform 11 is inserted inside the external preform 10 until the neck part 12 of the internal preform 11 rests on the neck part 3 of the external preform 10.
Then, the inner preform 11 is pushed inside the outer preform 10 by interference forcing the coupling at the coupling surfaces 13 and 14 or 16 (depending on the embodiment) on the inner surface 3 of the neck region 2 of the preform 10 and as previously illustrated in the figures.
In this condition, the preform 1 is irreversibly assembled, and it is ready for the subsequent production steps for obtaining a double-walled blown container, and according to a production process which is already known in the state of the art.
The present invention has numerous advantages.
A first advantage is given by the fact that transport costs are halved, since the transporting of two separate preforms it is not provided anymore, but instead only one assembled preform is foreseen.
A second advantage is given by the fact that the reduction of the transport costs allows a notable widening of the markets and a notable widening of the fields of use of the concentric preforms.
A third advantage is given by the fact that the so assembled double preform can be fed directly into the blow moulding machine, eliminating the expensive automation system for the inserting of the two preforms one into the other.
A fourth advantage is given by the fact that anyone who owns an already existing blow moulding machine is able to use the present preform without resorting to the automatic system which, in addition to being expensive, makes the system more complex by lowering its reliability.
| Number | Date | Country | Kind |
|---|---|---|---|
| 102021000021641 | Aug 2021 | IT | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/IB2022/057483 | 8/10/2022 | WO |