TECHNICAL FIELD
[0001] This invention relates to an industrial procedure for filling alcoholic beverages,
in particular wine, into stand-up type pouches made from polylaminate material. This
invention also relates to a filling machine designed to perform the procedure.
[0002] The machine according to the invention comprises certain operating stations which
are able to perform various advanced functions during the filling steps, at the end
of which there is a final product of high quality, which is especially necessary in
the presence of high quality wines.
[0003] This invention can be applied in the field of machines for filling beverages such
as wines or the like in containers and in particular in paper-based polylaminate containers.
BACKGROUND ART
[0004] It is known that machines currently exist on the market allowing automation of the
operations for packaging a wide range of food products in a wide range of containers
made from a wide range of materials.
[0005] One of the containers most commonly used for beverages which, in addition to glass,
gives the best results from the point of view of conservation is the cellulose-based
polylaminate container; this is a packaging system for foodstuffs which is widely
used throughout the world for the conservation of a wide variety of beverages and
liquid foodstuffs such as milk and fruit juices.
[0006] The polylaminate packaging is a container which, depending on the commercial life-span
of the product, can consist of paper, plastic and aluminium or paper and plastic.
The first type allows a long conservation of the foods, of between six and twenty
four months, at ambient temperature, whilst the container made of paper and plastic
is used for the short-term conservation of fresh foods at low temperatures.
[0007] The cellulose-based polylaminate containers are currently made using machines for
the production of beverage containers, also for single use, where the machines comprise
means for making containers made from polylaminate material, starting from a sheet
of polylaminate material made of paper, generally comprising two main folds facing
each other and sealed at the edges, a bottom fold joined with the main folds and withdrawn
between the two main folds along a median line and an opening positioned between the
two main folds in a counter-opposed position with respect to the base fold.
[0008] These containers are generally defined as "stand-up" and a type of these containers
is described in patent document
US 2012/0008884 A1, which also describes a system for filling liquids inside the containers.
[0009] Patent document
US 2011/167763 A1 also describes a system which allows the filling and closing by heat sealing, of
stand-up type containers.
[0010] These machines comprise filling means designed to introduce a predetermined quantity
of liquid in the container, closing means designed for closing the opening after introduction
of the liquid, as well as means allowing a predetermined quantity of inert gas to
be injected into the container, after introducing the liquid.
[0011] It has been found that these machines lack means which allow the perfect shape of
the finished container to be obtained and also means which allow the environment for
injection of the liquid and the subsequent environment for closing the container to
be kept perfectly aseptic.
[0012] Due to these drawbacks, the prior art machines do not allow finished containers with
a high quality to be obtained and consequently the beverages contained therein are
easily perishable especially if they are alcoholic beverages, in particular wine,
which is notoriously much more subject to oxidation phenomena and deterioration, compared
with other beverages.
[0013] Moreover, in the particular case of containers filled with alcoholic beverages, in
particular but not exclusively wine, the polylaminate materials conventionally used
in the industry for making containers for food products are not adequate to constitute
a container which is at the same time robust, sterile and perfectly sealed from the
outside environment. In the opinion of the Applicant, there are no systems which are
able to produce robust, sterile and perfectly sealed containers filled with alcoholic
beverages, in particular wine, on a large scale.
DESCRIPTION OF THE INVENTION
[0014] The present invention provides a procedure and a machine which makes it possible
to eliminate or at least reduce the drawbacks described above.
[0015] This is achieved by means of a procedure for filling alcoholic beverages, in particular
wine, into stand-up type containers made from polylaminate material having the characteristics
described in the main claim.
[0016] The dependent claims describe advantageous embodiments of the invention.
[0017] The main advantages of this solution, in addition to those deriving from the construction
simplicity, concern the fact that the machine for implementing the procedure according
to the invention allows a high standard of quality of the containers finished and
ready for use to be obtained, improving the constancy of the production which is made
much more reliable compared with that possible with the known solutions.
[0018] The machine for implementing the procedure according to the invention substantially
comprises means which allow the making in series of containers which can be filled
with alcoholic beverages, in particular wine, starting from a continuous sheet of
cellulose-based polylaminate material having an extremely robust laminar structure;
it not being possible to use this material according to the prior art procedures and
with the prior art machines.
[0019] The machine for implementing the procedure according to the invention uses a plurality
of workstations, including a station for pre-shaping the container, a station for
dosing gas in the presence of ultraviolet ray lamps, a station for dosing the alcoholic
beverage, in particular wine, a further station for dosing inert gas positioned immediately
upstream of a closing station in which the container is hermetically closed by heat
or ultrasound sealing.
DESCRIPTION OF THE DRAWINGS
[0020] Other features and advantages of the invention will become clear on reading the description
given below of one embodiment, provided as a non-binding example, with the help of
the accompanying drawings, in which:
- Figure 1 illustrates a schematic side view showing the layout of the different workstations
of an automatic packaging machine of containers made from polylaminate material filled
with an alcoholic beverage, in particular wine;
- Figure 2 illustrates a schematic perspective view of certain operational steps of
the machine for implementing the procedure according to the invention;
- Figure 3 illustrates a schematic view from below of a portion of the machine for implementing
the procedure according to the invention wherein a filled container is moved through
a tunnel for bringing together the open flaps of the container;
- Figure 4 illustrates a schematic perspective view of the structure of the tunnel of
Figure 3;
- Figure 5 illustrates a schematic front view of the outlet of the tunnel of Figure
3;
- Figure 6 illustrates a schematic side view of the upper portion of a container made
according to the invention, with particular reference to the first sealing of the
upper portion;
- Figure 7 schematically illustrates the first sealing operation of the upper portion
of the container as shown in Figure 6;
- Figure 8 illustrates a schematic side view of the upper portion of a container made
according to the invention, with particular reference to the second sealing of the
upper portion;
- Figure 9 schematically illustrates the second sealing operation of the upper portion
of the container as shown in Figure 8; and
- Figures 10A, 10B, 10C and 10D illustrate schematic side views in which the different
sealings made on the container are respectively shown according to the procedure of
the invention.
DESCRIPTION OF ONE EMBODIMENT OF THE INVENTION
[0021] Figure 1 shows a machine for implementing the procedure according to the invention
designed for packaging and filling containers made from polylaminate material, indicated
overall with the number 10.
[0022] The machine for implementing the procedure according to the invention generally comprises
a machine for packaging containers made of polylaminate material, where the containers
are initially made in known fashion starting from a continuous sheet of cellulose-based
polylaminate material which is unwound from a reel 11, which passes between rollers
positioned at an initial station 12 in which the sheet is folded into two main flaps
alongside each other. A similar machine, with a circular structure, is described in
the above-mentioned patent document
US 2012/0008884 A1.
[0023] A first important feature of the invention is the type of polylaminate material which
is used for implementing the procedure according to the invention. In effect, studies,
research and experiments carried out by the Applicant have shown that the conventional
polylaminate materials used for producing containers, also for single use, for long-life
food products are not suitable for the production of containers for alcoholic beverages,
in particular wine. It is has been found that the conventional containers are equipped
with a layer of paper with a low basic weight, in particular less than 100g/m2, which
is not able to adequately withstand the sophisticated sealing procedures to which
the containers must be subjected after filling with the aim of guaranteeing the perfect
seal, sterility and substantial absence of oxygen inside the container.
[0024] These production procedures are supported solely by cellulose-based polylaminate
materials wherein the cellulose layer comprises cardboard with a basic weight of between
150 and 250 g/m2. Excellent results can be obtained using a cellulose-based polylaminate
material wherein the cellulose layer comprises cardboard with a basic weight of 180g/m2.
[0025] By way of a non-binding example, a sheet made of polylaminate material which can
be used for implementing the procedure according to the invention has the following
structure, starting from the outer side towards the inner side of the finished container:
- low-density polyethylene (LDPE) 15g/m2;
- pure cellulose cardboard 180 g/m2;
- low-density polyethylene (LDPE) 20g/m2;
- aluminium foil - 6.3 micron 17g/m2;
- ethylene-methacrylic acid copolymer 10g/m2;
- low-density polyethylene (LDPE) 10g/m2;
- linear low-density polyethylene (LLDPE film) 25 micron 23g/m2.
The various layers mentioned above can vary in composition and weight. However, it
appears essential that the basic weight of the cardboard is never less than that shown
above.
[0026] Conventionally, the sheet folded previously is intercepted inside a second workstation
13 by a component which pushes it at its lower folded edge, in such a way as to form
a bottom fold folded inside and upwards.
[0027] Inside the third workstation 14 of the machine the shaped container, which is still
in the form of a continuous sheet which in a vertical section is now substantially
"W"-shaped, is subjected to a first heat-sealing process of two counter-opposing vertical
edges 40, 41 (see Figures 10A to 10D), using conventional heat-sealing devices, which
operate cyclically during the continuous feed of the sheet.
[0028] The sheet pre-shaped and with the vertical edges 40, 41 heat sealed is then subjected
to operations for separating the various containers by cutting with conventional counter-opposing
blades, creating a series of substantially rectangular, closed containers.
[0029] The separated containers, each of which has a base with a "W"-shaped vertical cross-section
and two vertical heat-sealed sides, are now close to a plurality of further workstations
for filling and closing the individual containers.
[0030] It should be noted that, due to the selection of the polylaminate material having
a cellulose layer with a basic weight of not less than 160g/m2, the container which
is formed possesses a rigidity which is much greater than that of conventional containers
of the stand-up type used for food products. Experiments carried out by the Applicant
have shown that the means conventionally used for opening containers with the aim
of being able to fill them, the means comprising a mechanism with suckers acting on
the counter-opposing flaps of the container and a jet of air acting in the container
(see, for example, patent document
US 2012/0008884 A1), are not absolutely sufficient to guarantee the complete opening of the containers
used in the procedure according to the invention, due to the greater rigidity of the
latter.
[0031] The machine designed to implement the procedure according to the invention therefore
has, as well as the conventional system with suckers and a jet of air to perform a
preliminary opening of the containers, the following additional workstations, the
operation of which is illustrated in Figures 1 and 2:
- 1. station 15 wherein the mouth of the opening 21 is mechanically opened by inserting
in the mouth of each container a truncated cone-shaped tool with an elliptical cross
section, that is hollow inside, as well as sending a high pressure jet of air inside
the truncated cone-shaped tool with the aim of further widening the base of the container;
- 2. station 16 for injecting sterilising gas, in particular nitrogen, inside each container
21. It should be noted that the prior art systems, for example that described in patent
document US 2012/0008884 A1, have a single nozzle which blows an inert gas, for example nitrogen, inside the
container 21 with the aim of reducing the presence of oxygen inside the container
21. In the case of the procedure and the machine according to the invention, which
describes the filling of containers with alcoholic beverages, in particular wine,
the elimination of the oxygen inside the container must be as accurate as possible
with the aim of avoiding the formation of oxidation reactions of the product inside
the containers once they are closed. As shown in Figure 2, the station 16 comprises
an elongated cylindrical nozzle 25 which is inserted to the bottom inside each container
21 and emits a high pressure jet of inert gas, in particular nitrogen, at the base
of the container. This allows a further final opening of the base of the container,
and guarantees the almost total elimination of the oxygen present inside the container.
Lastly, with the aim of guaranteeing the sterility of the procedure in progress, the
nozzle 25 during its movement is subjected to the action of a pair of UV lamps 26
which guarantee the constant disinfection;
- 3. station 17 of the conventional type, for filling the containers 21, in which a
predetermined quantity of the alcoholic beverage, in particular wine, is injected
inside each container, in which there is a modified atmosphere, using a vertically
movable nozzle 28;
- 4. station 18 for pre-closing the containers 21, at which a pair of movable bars 29
gently move together the upper flaps of each filled container 21, and where there
is a nozzle 31 comprising a flat element that is hollow inside, which is movable in
the same direction of movement as the containers, which sprays an inert gas in the
closing area of the container, with the aim of avoiding the presence of oxygen in
the closing area;
- 5. station 19 for sterilising the closing area, in which the upper portion of each
container 21 is inserted inside a sterilising tunnel 35 having a structure with the
shape of an elongated tunnel inside of which there is a fork 36 that definitively
moves together the upper edges of the container 21 moved forward. The tunnel 35 is
also equipped with a series of holes (not shown in the Figures) through which an inert
gas, for example nitrogen, is sprayed in the sealing area with the aim of avoiding
the presence of oxygen;
- 6. sealing station 20, positioned at the outlet of the tunnel 35, and in which the
upper part of the container 21 passes through a pair of sealing rollers 30 which definitively
close the container, preparing it for the entrance into the sealing stations.
[0032] In each of the workstations, each container 21 moves forward pushed by gripping means
of the conventional type forming part of automatic filling machines for liquid food
products.
[0033] In the conventional systems for filling containers of the stand-up type there are
generally one or two sealing stations, in particular heat sealing, which are typically
identical, the aim of the second sealing operation being solely that of strengthening
the effects of the first sealing. In the case of the procedure according to the invention,
which uses a cellulose-based polylaminate material wherein the cellulose layer has
a basic weight of less than 150g/m2, the conventional sealing system is not sufficient
to guarantee the total seal of the container filled with an alcoholic beverage, in
particular wine.
[0034] According to the invention, the machine 10 comprises a sealing station 38 inside
of which there are two sealing systems which perform different operations. As shown
in Figures 6, 7 and 10B, the first sealing system comprises a sealing unit 55 with
counter-opposing plates 56, 56' rotatable about a common pin 57. Each plate 56, 56'
is equipped with a shaped sealing area 58, 58' raised relative to the profile of the
plate, which is able to perform high temperature sealing of a predetermined shaped
area 60 of the container 21. The high temperature sealing (at about 250°C) allows
any liquid residue present in the sealing area to be eliminated, thereby avoiding
the formation of possible bubbles which can result in an imperfect seal of the container
21.
[0035] The sealing, which acts on a limited surface, can, according to the invention, be
performed by heat as described above; however, the sealing can also be performed by
ultrasound or by electro-induction.
[0036] As shown in Figures 8, 9 and 10C, the second sealing system comprises a sealing unit
65 having a pair of counter-opposing plates 66, 66', which are movable linearly in
the same direction and in opposite directions. The action of the plates 66, 66', which
operate at a temperature lower than that of the plates 56, 56' of the first sealing
system, allow the flaps 67 of the upper portion of the container 21 to be sealed.
[0037] As shown in Figure 10D, the final closed container 21 has, in effect, three different
types of sealings; more specifically, the initial sealing areas 40, 41 of the vertical
edges of the container, the high temperature sealing area 60 of the upper shaped edge
of the container, and the low temperature sealing area 67 of the upper flaps of the
container.
[0038] Lastly, the container reaches a final cutting station 43, wherein a pair of side
portions of the upper part of the container 21 are cut and separated from the container,
which adopts the shape of a bottle.
[0039] The container is then sent to further steps for storage.
[0040] As can be seen, this succession of steps ensures that the filling of the liquid foodstuff,
in particular wine, takes place under conditions which are absolutely favourable for
keeping it inside the container, creating the ideal conditions for its perfect conservation
in this particular type of container created specifically for single-use consumption.
[0041] The invention as described above refers to a preferred embodiment. It is nevertheless
clear that the invention is susceptible to numerous variations which lie within the
scope of the claims.
1. A procedure for filling alcoholic beverages, in particular wine, into stand-up type
containers made from polylaminate material comprising the following operational steps:
a) preparing a stand-up type container starting from a continuous sheet in the form
of a reel (11) of polylaminate material which is performed inside a machine that subsequently
performs a first operation for folding the sheet to form two main folds alongside
each other, a second folding operation during which a base fold folded inwards is
formed at the folded edge, and a third operation for sealing two counter-opposing
vertical edges (40, 41) of the container, in such a way as to form a container (21)
closed on three sides and which can be opened on the upper part;
b) mechanically opening the upper part of the container (21) to form a filling space
using a system of suckers which from the outside separate the counter-opposing flaps
of the container (21) and a jet of air sent at the opening area;
c) injecting an inert gas in the filling space with the aim of reducing the presence
of oxygen in the space;
d) introducing a predetermined quantity of liquid foodstuff inside the space;
e) closing without sealing the open edges of the container (21) under the action of
an inert gas with the aim of reducing the presence of oxygen in the closing area;
f) sealing the upper part of the container (21) to form a hermetically closed container
and containing a liquid foodstuff,
wherein
- step c) is performed by inserting inside the container (21) a nozzle (25) which
injects a high pressure inert gas, at the base of the container (21), causing the
complete unfolding of the base of the container (21) as well as the moving away of
the oxygen present inside the space,
- step e) is performed by moving the container (21) filled with an alcoholic beverage,
wine in particular, inside a structure comprising a sterilising tunnel (35) in which
the open edges of the container are placed alongside each other and an inert gas is
emitted inside the tunnel with the aim of keeping the edges placed alongside each
other free from the presence of oxygen;
- step f) is performed inside a sealing station (38) in which a first sealing unit
(55) performs a hermetic sealing operation fully sealing a shaped strip inside the
upper portion of the container (21) and a second sealing unit (65) seals the remaining
upper portion of the container (21) not touched by the first sealing;
the procedure being
characterised in that:
- the polylaminate material used comprises a cellulose layer having a basic weight
of not less than 150 g/m2;
- the mechanical opening of the upper part of the container is further performed using
a truncated cone-shaped tool with a substantially ellipsoidal base, which is hollow
inside, that is inserted in depth between the counter-opposing walls of the container
(21), opening them, and in that a high pressure jet of air is emitted inside the central cavity of said tool with
the aim of reaching the base of the container and opening the base of the container;
whereby the nozzle (25) for injecting inert gas comprises an elongated cylindrical
element movable vertically in such a way as to be able to be inserted in depth inside
the container, and
in that during its movement said nozzle (25) is subjected to the action of a pair of counter-opposing
ultraviolet light lamps which sterilise the nozzle (25).
2. A procedure according to claim 1, characterised in that polylaminate material comprises at least one outer layer made from low-density polyethylene
(LDPE), an inner layer made from linear low-density polyethylene (LLDPE), as well
as an intermediate layer comprising an aluminium foil.
3. A procedure according to any one of the preceding claims, characterised in that upstream of the sterilising tunnel (35) there is a nozzle (31) comprising a flat
element that is hollow inside which sprays an inert gas in the closing area of the
container with the aim of avoiding the presence of oxygen in the closing area.
4. A procedure according to any one of the preceding claims, characterised in that downstream of the sterilising tunnel there is a pair of sealing rollers (30) which
are placed along each other and along the counter-opposing walls of the upper portion
of the container (21) thereby arranging them to be sealed.
5. A procedure according to any one of the preceding claims, characterised in that the first sealing unit comprises a pair of counter-opposing plates (56, 56') rotatable
about a common pin (57), each plate being equipped with a shaped, raised sealing area
(58, 58'), the combined operation of the plates (56, 56') causing the high temperature
sealing of the shaped strip.
6. A procedure according to claim 5, characterised in that the sealing is performed on the plates (56, 56') at a temperature of greater than
220°C, preferably at about 250°C.
7. A procedure according to any one of the preceding claims, characterised in that in a further work step the upper part of the container (21) filled and sealed is
cut in a cutting station (43) with the aim of giving the container (21) the shape
of a bottle, the final container thereby having three different types of sealings,
more specifically, a pair of side sealings (40, 41) of the vertical edges of the container,
a high temperature shaped sealing strip (60) of a portion of the upper area of the
container, and a further sealing area (67) of the upper portion of the container.
8. A procedure according to claim 1, characterised in that the sealing is performed by the first sealing unit (55) by ultrasound or by electro-induction.
9. A procedure according to any one of the preceding claims, characterised in that the inert gas is nitrogen.
1. Verfahren zum Füllen von alkoholischen Getränken, insbesondere Wein, in aufrecht stehende
Behälter aus Polylaminat-Werkstoff, umfassend die folgenden Verfahrensschritte:
a) Herstellen eines aufrecht stehenden Behälters, beginnend mit einem fortlaufenden
Bogen in Form einer Rolle (11) aus Polylaminat-Werkstoff, was im Inneren einer Maschine
durchgeführt wird, die anschließend einen ersten Vorgang zum Falten des Bogens unter
Ausbildung von zwei Hauptfalten nebeneinander, einen zweiten Faltvorgang, bei dem
eine nach innen gefaltete Basisfalte an der gefalteten Kante ausgebildet wird, und
einen dritten Vorgang zum Versiegeln von zwei einander gegenüberliegenden Vertikalkanten
(40, 41) des Behälters derart durchgeführt, dass ein Behälter (21) ausgebildet wird,
der an drei Seiten geschlossen ist und der im oberen Teil geöffnet werden kann;
b) mechanisches Öffnen des oberen Teils des Behälters (21) zur Ausbildung eines Füllraums
unter Verwendung eines Systems von Saugnäpfen, die die einander gegenüberliegenden
Klappen des Behälters (21) von außen trennen, und eines Luftstroms, der am Öffnungsbereich
freigesetzt wird;
c) Einblasen eines inerten Gases in den Füllraum, um das Vorhandensein von Sauerstoff
in diesem Raum zu senken;
d) Einfüllen einer vorbestimmten Menge eines flüssigen Nahrungsmittels in den Raum;
e) Schließen der offenen Kanten des Behälters (21), ohne diese zu versiegeln, unter
der Einwirkung eines inerten Gases, um das Vorhandensein von Sauerstoff in dem Schließbereich
zu senken;
f) Versiegeln des oberen Teils des Behälters (21) unter Ausbildung eines hermetisch
geschlossenen Behälters, der ein flüssiges Nahrungsmittel enthält,
wobei Schritt c) durch Einsetzen einer Düse (25) an der Basis des Behälters (21) in
das Innere des Behälters (21) durchgeführt wird, die ein inertes unter Druck stehendes
Gas einbläst, was das vollständige Entfalten der Basis des Behälters (21) sowie das
Entfernen von Sauerstoff im Inneren des Raumes bewirkt,
Schritt e) durch Bewegen des Behälters (21), der mit einem alkoholischen Getränk,
insbesondere Wein, gefüllt ist, im Inneren einer Konstruktion, umfassend einen Sterilisiertunnel
(35), in dem die oberen Kanten des Behälters nebeneinander angeordnet werden und ein
inertes Gas im Inneren des Tunnels freigesetzt wird, um die nebeneinander angeordneten
Kanten frei von Sauerstoff zu halten;
Schritt f) im Inneren einer Versiegelstation (38) durchgeführt wird, in der eine erste
Versiegeleinheit (55) einen hermetischen Versiegelvorgang durchführt, wobei ein geformter
Streifen im Inneren des oberen Abschnitts des Behälters (21) vollständig geschlossen
wird, und eine zweite Versiegeleinheit (65) den übrigen oberen Abschnitt des Behälters
(21), der nicht vom ersten Versiegeln erfasst wurde, versiegelt
wobei das Verfahren
dadurch gekennzeichnet ist, dass
- der verwendete Polylaminat-Werkstoff eine Zelluloseschicht mit einem Grundgewicht
von nicht weniger als 150 g/m2 umfasst;
- das mechanische Öffnen des oberen Teils des Behälters weiter unter Verwendung eines
stumpfkegelförmigen im Inneren hohlen Werkzeugs mit einer im Wesentlichen ellipsenförmigen
Basis durchgeführt wird, das tief zwischen die einander gegenüberliegenden Wände des
Behälters (21) eingesetzt wird, wobei diese geöffnet werden, und dass ein Strom Druckluft
im Inneren der zentralen Höhlung des Werkzeugs freigesetzt wird, um die Basis des
Behälters zu erreichen und die Basis des Behälters zu öffnen;
wobei die Düse (25) zum Einblasen von inertem Gas ein längliches zylindrisches Element
umfasst, das vertikal derart beweglich ist, dass es tief in den Behälter eingesetzt
werden kann, und dass die Düse (25) während ihrer Bewegung der Einwirkung eines Paares
einander gegenüberliegender ultravioletter Lampen ausgesetzt ist, die die Düse (25)
sterilisieren.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass der Polylaminat-Werkstoff mindestens eine Außenschicht aus Polyethylen niedriger
Dichte (LDPE), eine Innenschicht aus linearem Polyethylen niedriger Dichte (LLDPE)
sowie eine Zwischenschicht aus Aluminiumfolie umfasst.
3. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass dem Sterilisiertunnel (35) eine Düse (31) vorgeordnet ist, die ein flaches, im Inneren
hohles Element umfasst, das ein inertes Gas in den Schließbereich des Behälters einbläst,
um das Vorhandensein von Sauerstoff im Schließbereich zu verhindern.
4. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass dem Sterilisiertunnel ein Paar Versiegelwalzen (30) nachgeordnet ist, die nebeneinander
und neben den einander gegenüberliegenden Wänden des oberen Abschnitts des Behälters
(21) angeordnet sind, um diese versiegeln zu können.
5. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die erste Versiegeleinheit ein Paar einander gegenüberliegender Platten (56, 56')
umfasst, die drehbar um einen gemeinsamen Stift (57) angeordnet sind, wobei jede Platte
mit einem geformten, erhöhten Versiegelungsbereich (58, 58') ausgestattet ist, wobei
der gemeinsame Betrieb der Platten (56, 56') ein Hochtemperatur-Versiegeln des geformten
Streifens verursacht.
6. Verfahren nach Anspruch 5, dadurch gekennzeichnet, dass das Versiegeln auf den Platten (56, 56') bei einer Temperatur von mehr als 220 °C,
vorzugsweise etwa 250 °C, durchgeführt wird.
7. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass in einem weiteren Arbeitsschritt der obere Teil des gefüllten, geschlossenen Behälters
(21) in einer Schneidstation (43) geschnitten wird, um dem Behälter (21) die Form
einer Flasche zu geben, wobei der fertige Behälter dadurch drei unterschiedliche Typen
von Versiegelungen umfasst, genauer gesagt ein Paar Seitenversiegelungen (40, 41)
der vertikalen Kanten des Behälters, einen durch hohe Temperatur geformten Versiegelungsstreifen
(60) eines Abschnitts des oberen Bereichs des Behälters und einen weiteren Versiegelungsbereich
(67) im oberen Abschnitt des Behälters.
8. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass die Versiegelung durch die erste Versiegeleinheit (55) mittels Ultraschall oder mittels
elektromagnetischer Induktion durchgeführt wird.
9. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das inerte Gas Stickstoff ist.
1. Procédé pour verser des boissons alcoolisées, en particulier du vin, dans des récipients
du type à fond plat réalisés dans un matériau polylaminé, comprenant les étapes de
fonctionnement suivantes :
a) préparer un récipient du type à fond plat à partir d'une feuille continue sous
la forme d'un rouleau (11) de matériau polylaminé à l'intérieur d'une machine qui
effectue ensuite une première opération de pliage de la feuille pour former deux pliures
principales le long l'une de l'autre, une seconde opération de pliage au cours de
laquelle une pliure de la base vers l'intérieur est formée au niveau du bord replié,
et une troisième opération de scellement de deux bords verticaux opposés (40, 41)
du récipient, de manière à former un récipient (21) fermé sur trois côtés et pouvant
être ouvert au niveau de sa partie supérieure ;
b) ouvrir mécaniquement la partie supérieure du récipient (21) pour former un espace
de remplissage au moyen d'un système de ventouses qui séparent les rabats opposés
du récipient (21) depuis l'extérieur et d'un jet d'air envoyé au niveau de la zone
d'ouverture ;
c) injecter un gaz inerte dans l'espace de remplissage dans le but de réduire la présence
d'oxygène dans ledit espace ;
d) introduire une quantité prédéterminée d'aliment liquide à l'intérieur de l'espace
;
e) fermer sans scellement les bords ouverts du récipient (21) sous l'action d'un gaz
inerte dans le but de réduire la présence d'oxygène dans la zone de fermeture ;
f) sceller la partie supérieure du récipient (21) pour former un récipient hermétiquement
fermé et contenant un aliment liquide,
dans lequel
- l'étape c) est effectuée en insérant dans le récipient (21) une buse (25) qui injecte
un gaz inerte sous haute pression au niveau de la base du récipient (21), provoquant
le dépliage complet de la base du récipient (21) ainsi que l'expulsion de l'oxygène
présent dans cet espace,
- l'étape e) est effectuée en déplaçant le récipient (21) rempli d'une boisson alcoolique,
en particulier du vin, à l'intérieur d'une structure comprenant un tunnel de stérilisation
(35) dans lequel les bords ouverts du récipient sont placés le long l'un de l'autre
et un gaz inerte est émis dans le tunnel pour ne pas exposer les bords placés le long
l'un de l'autre à la présence d'oxygène ;
- l'étape f) est effectuée dans un poste de scellement (38) dans lequel une première
unité de scellement (55) effectue une opération de fermeture hermétique en scellant
complètement une bande profilée à l'intérieur de la partie supérieure du récipient
(21) et une seconde unité de scellement (65) scelle la partie supérieure restante
du récipient (21) qui n'a pas été touchée par le premier scellement,
le procédé étant
caractérisé en ce que :
- le matériau polylaminé utilisé comprend une couche de cellulose ayant un poids de
base d'au moins 150 g/m2;
- l'ouverture mécanique de la partie supérieure du récipient est en outre effectuée
en utilisant un outil tronconique creux présentant une base sensiblement ellipsoïdale
inséré en profondeur entre les parois opposées du récipient (21) et ouvrant celles-ci,
et en ce qu'un jet d'air sous haute pression est émis dans la cavité centrale dudit outil dans
le but d'atteindre la base du récipient et d'ouvrir la base du récipient ;
la buse (25) d'injection de gaz inerte comprenant pour ce faire un élément cylindrique
allongé pouvant être déplacé verticalement de manière à pouvoir être inséré dans le
récipient, et
en ce qu'au cours de son mouvement, ladite buse (25) est soumise à l'action d'une paire de
lampes à ultraviolets opposées qui stérilisent la buse (25).
2. Procédé selon la revendication 1, caractérisé en ce que le matériau polylaminé comprend au moins une couche externe en polyéthylène basse
densité (LDPE), une couche interne en polyéthylène linéaire basse densité (LLDPE),
ainsi qu'une couche intermédiaire comprenant une feuille d'aluminium.
3. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'en amont du tunnel de stérilisation (35) se trouve une buse (31) comprenant un élément
plat et creux qui pulvérise un gaz inerte dans la zone de fermeture du récipient dans
le but d'éviter la présence d'oxygène dans la zone de fermeture.
4. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'en aval du tunnel de stérilisation se trouve une paire de rouleaux de scellement (30)
placés le long l'un de l'autre et le long des parois opposées de la partie supérieure
du récipient (21), permettant ainsi leur scellement.
5. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que la première unité de scellement comprend une paire de plaques opposées (56, 56')
mobiles en rotation autour d'un axe commun (57), chaque plaque étant équipée d'une
zone de scellement en relief profilée (58, 58'), le fonctionnement combiné des plaques
(56, 56') provoquant le scellement à haute température de la bande profilée.
6. Procédé selon la revendication 5, caractérisé en ce que le scellement est effectué sur les plaques (56, 56') à une température supérieure
à 220°C, de préférence à au moins 250°C.
7. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'au cours d'une étape de travail ultérieure, la partie supérieure du récipient (21)
rempli et scellé est découpée dans un poste de découpe (43) dans le but de donner
au récipient (21) la forme d'une bouteille, le récipient final présentant de la sorte
trois types différents de scellement, plus particulièrement une paire de scellements
latéraux (40, 41) des bords verticaux du récipient, une bande de scellement profilées
à haute température (60) d'une partie de la zone supérieure du récipient, et une zone
de scellement supplémentaire (67) de la partie supérieure du récipient.
8. Procédé selon la revendication 1, caractérisé en ce que le scellement est effectué par la première unité de scellement (55) par ultrasons
ou par électro-induction.
9. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que le gaz inerte est l'azote.