The present invention concerns a packaging comprising at least two parts which are assembled by deforming one portion of the plastic material—preferably polyethylene terephtalate (PET) or polyethylene naphtalate (PEN) of at least one of these parts.
A packaging generally comprises a container with a container opening that is closed by a closure element.
The assembly process of the closure element (cap) to the container requires to have cooperating screw threads on these two parts of the packaging, or an equivalent means such as clipping cooperating elements.
There is a need for an alternative system for efficiently and reliably attaching a closure element to a container.
The technical problem mentioned above is met with a packaging comprising a container with a container body, and a container opening having an upper edge, and a closure for closing said container, the container and the closure being made preferably out of polyethylene terephtalate (PET), polyethylene naphtalate (PEN), or a combination thereof, said container and said closure comprising respectively first and second attachment means
According to the invention, the packaging is characterized in that:
(i) the first and second attachment means are adapted in shape and size to cooperate with each other, and
(ii) at least the second attachment means are made of PET or PEN and adapted in shape and size to deform permanently by punching or rolling to link both attachment means, and create a permanent, preferably fluid-tight, arrangement between said container and said closure.
The permanent deformation that is applied to the groove wall was found to be possible under certain constraints, and only with PET Polyethylen terephtalat), PETG (glycol-modified polyethylene terephthalate), PEN (Polyethylene Naphthalate), PTT (Poly Trimethylene Terephthalate), PLA (Polylactic acid), PHAs (Polyhydroxyalkanoate) or materials with according stiffness properties. This deformation is permanent and the deformed part is sufficiently strong to prevent the attached part to detach from the other, even when high mechanical constraints are applied to the assembly. Basically, the type of link that is achieved with such an assembly method, is as strong as heat sealing between the two parts.
In a preferred embodiment of the invention, the first attachment means is a groove having one of its walls which is deformable by punching or rolling, and the second attachment means is an extending ridge adapted in shape and size to be inserted into the groove, and in that the closure is attached to the container in a water-tight arrangement by inserting the closure ridge into the container groove and permanently deforming at least one wall of the groove so as to unremovably catch the ridge into the groove.
In a most preferred embodiment of the invention, the first attachment means is a groove having one of its walls which is deformable by punching or rolling, and the second attachment means is an extending ridge adapted in shape and size to be inserted into the groove, and in that the closure is attached to the container by inserting the closure ridge into the container groove and permanently deforming at least one wall of the groove so as to unremovably catch the ridge into the groove. The water-tight sealing of the container is done on the inside of the upper end of the opening of the container by the closure and not at the closure attachement.
Preferably the groove wall is less than 2 mm, preferably less than 1 mm thin so as to be more easily deformable by punching or rolling, and so as to avoid possible problems of cracking or whitening of the plastic material when the deformation is applied. The flexibility and permanent deformation of the material is made possible when the piece to be deformed is sufficiently thin so as to bend, up its point of permanent deformation, without stressing too much the plastic material.
In one first possible embodiment of the invention, the closure can comprise a spout and an overcap attached to the spout, in which case the closure's ridge extends from the lower edge of the spout.
In a second possible embodiment of the invention, the closure element can comprise a ring-shaped base and an overcap attached to the base, in which case the closure's ridge extends from the lower edge of the ring-shaped base.
In all cases, the overcap can advantageously be pivotably attached to the spout or, respectively, to the ring-shaped base, by a pivot hinge.
Preferably in the second possible embodiment of the invention mentioned above, the ring-shaped base is less than 10 mm, preferably less than 3 mm in height.
The overcap mentioned above is preferably made out of polypropylene (PP), and also preferably, said spout and said overcap are manufactured as one single piece.
Further, on top of the plastic deformation that is used as an essential way to assemble the packaging according to the present invention, the closure element can also be attached to the container by ultrasonic sealing.
Preferably, the packaging according to the present invention further comprises tamper-evident means, said means preferably comprising a detachable tamper-evident band that is formed together with the closure, so that it catches one part of the container, thus preventing removal of the closure from said container, unless the said tamper-evident band is torn from the rest of the closure.
Additional features and advantages of the present invention are described in, and will be apparent from, the description of the presently preferred embodiments which are set out below with reference to the drawings in which:
As illustrated in
In the present description, it can be seen from the drawing that
The container 2 comprises a container body 5 and a container opening having an upper edge. Said container 2 and said closure 4 comprising first 8 and second 9 corresponding attachment means.
According to the invention, the second attachment means 9 are adapted in shape and size to cooperate with the first attachment means 8, and both attachment means 8, 9 are made of PET and integrally part of the rest of the pieces they are linked to—they could however be added to existing parts, by any means of linking, such as heat sealing, ultrasonic welding for instance—. More than that, both attachment means 8, 9 are adapted in shape and size to deform permanently by rolling to create a permanent arrangement between said container 2 and said closure 4.
As can be seen from
The second attachment means is an extending ridge 9 that is adapted in shape and size to be inserted into the groove 8, such that the closure can be attached to the container in an arrangement by inserting the closure ridge into the container groove and permanently deforming the wall 10 of the groove 8 so as to unremovably catch the ridge 9 into said groove 8.
Of course, the example described herein shall not be taken as a limiting example, and for instance the first attachment means of the closure could be a groove, whereas the second attachment means of the container could be a corresponding ridge (inverted positioning of the attachment means relative to the constitutive parts of the packaging.
The deformable groove wall 10 is about 1.5 mm thin so as to be more easily deformable during the rolling operation, and so as to avoid possible problems of cracking or whitening of the plastic material when the deformation is applied. The flexibility and permanent deformation of the material is made possible when the piece to be deformed is sufficiently thin so as to bend, up its point of permanent deformation, without stressing too much the plastic material.
As illustrated in
As shown in
The groove is a U-shaped groove with a height of at least 2, preferably at least 3 mm, and a width sufficient to accommodate the ridge of the closure.
The permanent deformation can be performed by punching, rolling, cold forming, hot forming, or a combination thereof. As illustrated in
The permanent deformation of the PET or PEN is performed at a temperature comprised between 0° C. and the glass transition temperature of the plastic material. This temperature of glass transition is well defined for both thermoplastics used in the present invention. For PET, the temperature of glass transition is Tg=69° C. For PEN, this temperature of glass transition is Tg=122° C. However, preferably the permanent deformation is applied at a temperature which is comprised in a more restricted range, and a range which is closer to ambient temperature, that is to say a temperature comprised between 18° C. and 40° C., more preferably at a temperature comprised between 20° C. and 30° C.
In the example shown in
Actually, the attachment means of the container and/or the closure could be not entirely circular (i.e. all around the periphery), but rather on a portion of the circumference of the container and/or closure, or even at very specific points of the said container and/or closure.
As illustrated in
As shown in
However, as shown in
In order to avoid the potential problem illustrated in
This detachable portion 19 is moulded as an integral portion of the rest of the closure 4, but linked to the latter by breakable bridges 16 of plastic material. This detachable front wall portion 19 of the closure can be also integral to the ring 13 of the closure (embodiment not shown in the drawing), or alternatively it can be also detachable from the ring 13, as illustrated in
As shown in
It should be understood that various changes and modifications to the presently preferred embodiments described herein will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present invention and without diminishing its attendant advantages. It is therefore intended that such changes and modifications be covered by the appended claims.
The process according to the invention is more specifically disclosed in the claims.
Number | Date | Country | Kind |
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09173867.4 | Oct 2009 | EP | regional |
09173868.2 | Oct 2009 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2010/065839 | 10/21/2010 | WO | 00 | 4/23/2012 |