This invention relates to a device for the storage and metering of a plurality of components. More particularly, this invention relates to a device for the storage and metering of multiple components for mixing purposes.
As is known, various types of packaging have been used, for example, for the storage of the individual components of a multi-component adhesive, for use in the food industry or for the packaging of medicinal preparations. Common to all this packaging is that the individual components are stored in separate containers, which are lockable, until they are used. Packaging of this kind is, in particular, known as blister packaging. Blister packages for liquid ingredients and ingredients in powder form consist of a deep drawn foil (deep drawn film) and a sealing foil which closes off the ingredients.
In the case of some foodstuffs, cosmetics, pharmaceutical products or adhesives, a plurality of components have to be or should be packaged separately for eventual use together at the same time. Thus, a package for this purpose consists of at least two blister packages that can be connected to one another in a suitable manner. A so-called double blister package is known in which two components are stored next to one another. This double blister packages comprises a deep drawn foil with two deep drawn pockets lying next to each other. A component is inserted into each of the pockets. The components are closed with a sealing foil so that the components can be stored in their pockets, without there being a danger of a leak. During use, the components are pressed out, one after the other. Alternatively, the pockets lying next to each other are folded over one another over a pre-determined bending edge and are jointly pressed out. In this case, the two pockets are brought to lie one above the other and the pressing out process can take place exactly at the same time for all components.
The aforementioned packages are simple to manufacture, however they have the disadvantage that the correct use has to be explained to the user and there is also the possibility of faulty manipulation. Moreover, a solution with a common outlet passage or with an integrated mixer cannot be realised in this form because either a common outlet passage cannot be provided design-wise or because a separate closing mechanism has to be provided which prevents a discharge of the components from their respective pockets during storage. A closing mechanism would be only be releasable during use in order to facilitate a discharge of the components into a common discharge passage.
A multi-component foil container is known from DE 20 2005 001 203U1 and from WO2006079413. The multi-component foil container has a lower half shell and an upper half shell which is manufactured from an inherently stable plastic foil by deep drawing or thermoforming. The two half shells are fixedly connected to one another by welding or gluing. Each of the half shells contains a storage region for the reception of a respective component in a chamber provided for this. Adjacent chambers for different components are separated from each other by a partitioning foil. In accordance with DE 20 2005 001 203 U1, the chambers are arranged one above the other in the half shells. The chambers open out on the one side into a mixing region, which is separated from the chambers, so that each component is kept sealed so long as it is stored.
In the first embodiment shown in WO2006/079413, horizontal partitioning webs are inserted between the chambers of the half shells that are filled with a component and a trough-shaped depression into which a mixing element can be inserted. With regard to the partitioning webs, it is only mentioned that they are designed in such a way that they are forced apart by the emerging components at a predetermined point, in order to open a passage from the chambers to the trough-shaped depression which the forms the discharge passage. In accordance with all other embodiments, opening spikes, plungers or webs coupled to the mixer element or webs of the mixer element are provided, in order to establish a connection between the chambers and the mixer element, which makes the discharge of the components possible. Discharge means can be provided in order to guarantee a uniform discharge, which cannot be achieved with manual handling.
The non-releasable connection of such blister packages lying one above the other has caused considerable problems up until now. Thus, in blister packages in accordance with the prior art, the two rear sides of the sealing foils have to be connected together. This can be done, at most, by an additionally applied sealant layer and later sealing, and when using one of these named methods, the material choice for the sealing foils is very restricted.
Further, the packages can be subject to faulty manipulation, for example, by bringing together two storage regions wherein both only contain a hardener component of a two-component adhesive. If a device of this kind were used, the two-component adhesive would not harden, since the binder component is missing. The necessary chemical reaction between the hardener component and the binder component would be missing, so that no adhesive connection could take place. For this reason, all components should already be stored in separate storage regions even during the manufacture of the device, wherein the storage regions remain together by means of a non-releasable connection, at least for the duration of the storage.
Thus, where two components have to be used together, a common discharge passage for the components can be integrally moulded into the package. Moreover, the two components can be pressed out simultaneously and in a defined amount by simple pressing by hand or using a simple auxiliary device. If the two components are adhesive components which have to be mixed in a predetermined ratio, then this precise metering has a special significance.
If a mixing element is inserted into a discharge passage integrally moulded to the package, as shown in WO 2006/079413, then a non-releasable, sealed and pressure-resistant connection of the two storage regions is essential. However, the mixing element has a high pressure loss due to the use of a plurality of deflecting elements within the mixing element, so that a relatively high pressing out pressure is required. Also, the storage regions and also the connecting passages to the mixing elements and the passage in which the mixing element is received have to be resistant to this pressing out pressure.
Accordingly, it is an object of the invention to provide a simple and economical device with sealed storage regions lying one above the other for flowable components, wherein the connection of the two devices is non-releasable so long as the device is not in use.
It is an object of the invention to reduce the cost of manufacturing a device for the storage of multiple components that are to be mixed at a later time.
It is another object of the invention to reduce the risk of a faulty manipulation of a device in which multiple components are stored for joint dispensing from the device.
It is another object of the invention to be able to safely store multiple components in separate storage regions until use.
It is another object of the invention to reduce the risk of combining storage regions of a multi-component storage device with the same components by mistake.
Briefly, the invention provides a device for the storage of a plurality of components that are intended for joint use. The device is particularly suitable for multi-component adhesives.
The device includes a first storage region that defines a pocket for the reception of a first component and a second storage region that defines a pocket for the reception of a second component with the two first storage regions being arranged one above the other.
In addition, at least one cover is disposed over the pocket of at least one of the two storage regions with a seam securing the cover to at least one of the two storage regions in sealed relation while a connecting means secures the two storage regions outside the seam relative to the cover.
In this arrangement, each storage region is formed by a foil of the same material which is, in particular, designed as a deep drawing foil. The two foils can be non-releasably and sealingly connected, by the connecting means preferably formed by thermal welding, ultrasonic welding or laser welding. Thermal welding has proven to be a particularly simple and safe method. In this connection, readily weldable deep drawing foils which contain, in particular, polypropylene or polyethylene, are welded together by the pressing together of two heated stamps of a welding tool lying opposite one another. In order to improve the chemical or physical characteristics, such as the resistance to chemicals for example, multi-layer foils such as, for example, composite aluminium foils can be used, in which the surface to be welded is made of a readily weldable plastic.
In one embodiment, a single cover is used to cover the pocket of both storage regions. In another embodiment, two covers are used, with each covering a pocket of a respective storage region. In this latter embodiment, a pair of seams are formed, one for each cover in order to secure a respective cover to a respective storage region in sealed relation. The selection of one of these embodiments is, on the one hand, conditional on the chemical and physical characteristics of the components. It can, for example, be necessary for particularly reactive components to provide a special cover and/or lining of the storage region. The manufacture of pockets with different volumes lying one above the other can likewise make it necessary that each component has its own cover. Furthermore, the manufacturing method can make it necessary for the filling of the pockets to take place sequentially. This means that the pockets are first filled with a first component and closed immediately. The filling of the pockets with the second component only takes place once the desired batch size is reached.
The device also has at least one outlet or discharge passage for communicating with each pocket of each storage region for dispensing the respective components as a consequence of the action of an applied pressure on the pockets forming the storage regions. In addition, a discharge tube is provided downstream of the outlet passage with or without a mixing element within the discharge tube for receiving and dispensing the respective components.
In accordance with a further advantageous variant, an opening means is provided in order to open the storage regions immediately prior to use. An opening means of this kind can, on the one hand, be formed as a partitioning means. A partitioning means includes cutting edges which bring about cutting through of the cover, wherein the opening means is formed as a plunger or as a web of a mixing element.
As an alternative to this, the opening means can open a discharge passage in that a dilation of a slot takes place without the material of the cover or of the foils having to be cut through. An opening means of this kind is formed as a wedge for example.
A further category of opening means includes means for the releasing of the connection of the foils by kinking movements in the region of the still closed discharge passage. A movement of the discharge tube towards the pockets results in kinking in the region of the discharge passage, which prevents the discharge of the components into the discharge tube. Thus, a passage is released by the kinking movement acting on the outlet passage through which the associated component can flow, after the opening means has been activated.
The invention also provides a method for the storage and for the metering of a plurality of components. This method includes the steps of:
To meter the components, a simultaneous pressing out of the storage regions takes place for the direct combination of the two components in the desired ratio to one another.
Subsequent to being combined, the components are mixed in a mixing element.
The opening means can be provided for each of the previously described embodiments, in order to open the storage regions directly prior to use. The opening means is arranged between a discharge tube and the storage regions, and can be operated, in particular, by a kinking movement of the storage regions and of the discharge tube so that a passage is released through the kinking movement through which the components flow into the discharge tube. This results in a step of simultaneously opening the first and second storage regions directly before use to expel the respective components therefrom.
These and other objects and advantages of the invention will become more apparent from the following detailed description taken in conjunction with the accompanying drawings wherein:
a illustrates a perspective view of device in accordance with the prior art;
b illustrates a front side view of the device of
c illustrates a side view of the device of
a illustrates a perspective view of further device in accordance with the prior art;
b illustrates a section view taken on line A-A of
a illustrates a perspective view of further device in accordance with the prior art;
b illustrates a view of the device of
a illustrates a perspective view of the top half of a device in accordance with the invention;
b illustrates a front side view of the device of
c illustrates a perspective bottom view of the device of
a illustrates a perspective view of the full device in accordance with the invention;
b illustrates a front side view of the device of
c illustrates a perspective bottom view of the device of
a illustrates a step in the assembly of a first embodiment of the device in accordance with the invention;
b illustrates a subsequent step in the assembly of the first embodiment of the device in accordance with the invention;
a illustrates a step in the assembly of a second embodiment of the device in accordance with the invention;
b illustrates a subsequent step in the assembly of the second embodiment of the device in accordance with the invention;
a illustrates a perspective view of a modified device with an integrated mixing element in accordance with the invention;
b illustrates a perspective view of the cover, outlet passage and mixing element used in the device of
c illustrates a perspective view of the cover, outlet passage, foil and mixing element used in the device of
Referring to
As indicated in
In use, the components are pressed out of the package 1 one after the other.
Referring to
This package is certainly simple to manufacture; however, the package has the disadvantage that the correct use has to be explained and there is also the possibility of faulty manipulation. Moreover, a solution with a common discharge passage or with an integrated mixing element can not be realised.
As shown in
Referring to
As shown, the top half of the storage and metering device includes a first storage region 2 in the form of a pocket 4 that is formed in a foil 6 which fully surrounds the pocket 4. The pocket 4 has the shape of a half shell for the reception of a first component which is to be regarded as a particularly advantageous embodiment due to the simple manufacturability. Regardless of this, the pocket 4 can have any other shape that has a hollow space in their interior, which can serve for the reception of a component, in particular of a flowable component.
The storage and metering device also includes a discharge passage 7 that communicates with the storage region 2 and protrudes beyond the storage region 2.
As shown in
Referring to
The foils 6,10 are connected directly to each other concentrically outside the seam 14 (not shown) via an annular connecting means 16 at the peripheral edges. In this arrangement, the foils 6,10 are made up of the same material and are, in particular, designed as deep drawing foils that can be inseparably and sealingly connected preferably by thermal welding, ultrasonic welding or laser welding. Thermal welding has proved to be a particularly preferable method because it is simple and safe. In this connection, readily weldable deep drawn foils, which contain polypropylene or polyethylene, for example, are welded together by the pressing together of two heated stamps of a welding tool lying opposite one another. In order to improve the chemical or physical characteristics, such as resistance to chemicals, multiple layer foils, such as aluminium composite foils, can be used in which the surface to be welded is made of a readily weldable plastic.
Referring to
Furthermore, the manufacturing process can provide for the step of filling of the pockets to take place sequentially. This means that the pockets have first to be filled with a first component and closed. The filling of the pockets with the second component only takes place once the desired batch size has been reached.
In accordance with
Subsequent to this, a second pocket 8 in the shape of a half shell along with an outlet passage 9 are formed in a second foil 10. The pocket 8 and the outlet passage 9 are then covered by the annular cover 11 after a second component has been filled into the pocket 8.
The two storage regions 2,3 are then positioned one above the other, as shown in
Referring to
In this embodiment, the filling and sealing of the pocket 4 of the first storage region 2 takes place in the same way as illustrated and described in
Referring to
Referring to
Referring to
The opening means 17 is formed as a partitioning means and includes cutting edges which effect a cutting through of the cover 5 and which are arranged in the region of the outlet passage or is formed as a plunger (not shown) or a web of the mixing element 12 (not shown).
Alternatively, the opening means 17 can open the outlet passage 7,9 in that a widening of a slit takes place without material of the cover 5 or of the foils 6 needing to be cut through. An opening means of this kind 17 is formed as a wedge, for example.
A further category of opening means 17 includes means for the opening a gap between the foils 6,10 by kinking movements in the region of the still closed outlet passage 7, 9. Through movement of the discharge tube 13 towards the pockets 4, 8, kinking in the closing region of the outlet passage results, which prevents the discharge of the components into the discharge tube 13, as long as the device is not in use. Thus, the cover is torn open by means of the kinking movement acting on the outlet passage 7, 9, so that a passage is freed through which the associated components can flow after the opening means 17 have been actuated. The outlet passages 7, 9 are arranged offset relative to one another. The upper cover 5 is torn open by means of the outlet passage 9, the lower cover 11, if present, by means of the outlet passage 7.
The whole device is connected outside the seam securing the covers 5,11 to the foils 6,10 and, if necessary, around the discharge tube 13 for the mixing element 12 by a connecting means 16. A welded connection can in particular be manufactured by means of the connecting means.
Referring to
The storage and metering device in accordance with any one of the above embodiment is, in particular, suitable for multiple component adhesives or multiple component sealants.
The method for the storage and for the metering of a plurality of components includes the following steps:
For the metering of the components, a simultaneous pressing out of the storage regions 2, 3 takes place for the direct combination of the two components for metering in the desired ratio to one another. Subsequent to being combined, the components can be mixed in the mixing element 12. An opening means 17 can be provided for each of the previously described embodiments in order to open the storage regions 2, 3 directly before use, so that the components can emerge from the storage regions 2,3. The opening means 17 is arranged between the discharge tube 13 and the storage regions 2, 3 and can, in particular, be operated by a kinking movement of the storage regions and of the discharge tube 13, so that a passage is released by the kinking movement through which the components flow into the discharge tube 13.
The invention thus provides a simple and economical device with sealed storage regions lying one above the other for flowable components that can be safely stored for mixing at a later time. The invention also reduces the risk of a faulty manipulation of the device as well as the risk of combining storage regions with the same components by mistake.
Number | Date | Country | Kind |
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07405016.2 | Jan 2007 | EP | regional |